WO2024220696A2 - Hydrophobic silica wet gel and aerogel - Google Patents
Hydrophobic silica wet gel and aerogel Download PDFInfo
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- WO2024220696A2 WO2024220696A2 PCT/US2024/025233 US2024025233W WO2024220696A2 WO 2024220696 A2 WO2024220696 A2 WO 2024220696A2 US 2024025233 W US2024025233 W US 2024025233W WO 2024220696 A2 WO2024220696 A2 WO 2024220696A2
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- C01B33/113—Silicon oxides; Hydrates thereof
- C01B33/12—Silica; Hydrates thereof, e.g. lepidoic silicic acid
- C01B33/14—Colloidal silica, e.g. dispersions, gels, sols
- C01B33/157—After-treatment of gels
- C01B33/158—Purification; Drying; Dehydrating
- C01B33/1585—Dehydration into aerogels
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- B32B17/00—Layered products essentially comprising sheet glass, or glass, slag, or like fibres
- B32B17/06—Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
- B32B17/065—Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of paper or cardboard
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- B32B17/00—Layered products essentially comprising sheet glass, or glass, slag, or like fibres
- B32B17/06—Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material
- B32B17/066—Layered products essentially comprising sheet glass, or glass, slag, or like fibres comprising glass as the main or only constituent of a layer, next to another layer of a specific material of foam
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- B32B27/00—Layered products comprising a layer of synthetic resin
- B32B27/30—Layered products comprising a layer of synthetic resin comprising vinyl (co)polymers; comprising acrylic (co)polymers
- B32B27/304—Layered products comprising a layer of synthetic resin comprising vinyl (co)polymers; comprising acrylic (co)polymers comprising vinyl halide (co)polymers, e.g. PVC, PVDC, PVF, PVDF
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- B32B27/30—Layered products comprising a layer of synthetic resin comprising vinyl (co)polymers; comprising acrylic (co)polymers
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- B32B27/00—Layered products comprising a layer of synthetic resin
- B32B27/36—Layered products comprising a layer of synthetic resin comprising polyesters
- B32B27/365—Layered products comprising a layer of synthetic resin comprising polyesters comprising polycarbonates
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- B32B—LAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
- B32B7/00—Layered products characterised by the relation between layers; Layered products characterised by the relative orientation of features between layers, or by the relative values of a measurable parameter between layers, i.e. products comprising layers having different physical, chemical or physicochemical properties; Layered products characterised by the interconnection of layers
- B32B7/04—Interconnection of layers
- B32B7/05—Interconnection of layers the layers not being connected over the whole surface, e.g. discontinuous connection or patterned connection
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- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B33/00—Silicon; Compounds thereof
- C01B33/113—Silicon oxides; Hydrates thereof
- C01B33/12—Silica; Hydrates thereof, e.g. lepidoic silicic acid
- C01B33/14—Colloidal silica, e.g. dispersions, gels, sols
- C01B33/155—Preparation of hydroorganogels or organogels
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- B32B2255/10—Coating on the layer surface on synthetic resin layer or on natural or synthetic rubber layer
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B32B2266/126—Aerogel, i.e. a supercritically dried gel
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- B32B2307/00—Properties of the layers or laminate
- B32B2307/30—Properties of the layers or laminate having particular thermal properties
- B32B2307/304—Insulating
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B32B2307/00—Properties of the layers or laminate
- B32B2307/40—Properties of the layers or laminate having particular optical properties
- B32B2307/412—Transparent
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- B32B2307/00—Properties of the layers or laminate
- B32B2307/70—Other properties
- B32B2307/73—Hydrophobic
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B32B2419/00—Buildings or parts thereof
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- C01—INORGANIC CHEMISTRY
- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
- C01P2006/00—Physical properties of inorganic compounds
- C01P2006/10—Solid density
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- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
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- C01P2006/12—Surface area
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- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
- C01P2006/00—Physical properties of inorganic compounds
- C01P2006/16—Pore diameter
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- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
- C01P2006/00—Physical properties of inorganic compounds
- C01P2006/32—Thermal properties
Definitions
- the present invention relates to hydrophobic silica wet gel and methods of making hydrophobic silica wet gel.
- the invention also relates to hydrophobic transparent silica aerogel and methods of making hydrophobic transparent silica aerogel. Additionally, the invention relates to hydrophobic transparent silica aerogel sheets and methods of making hydrophobic transparent silica aerogel sheets. Further, the invention relates to an article having a glass sheet and a hydrophobic transparent silica aerogel sheet, and methods of making such an article. Still further, the invention relates to an insulating glazing unit having a hydrophobic transparent silica aerogel sheet between two glass sheets, and methods of making such an insulating glazing unit. Further yet, the invention relates to a laminated glass assembly having a hydrophobic transparent silica aerogel sheet between glass sheets, and methods of making such a laminated glass assembly.
- Silica aerogels are thermally insulating materials that have applications in a number of different industries. However, silica aerogels have had limited applications in windows because they have not traditionally achieved the right combination of mechanical, thermal and optical properties to be fully acceptable for all such applications.
- researchers have experimented with many different precursor recipes and methods in the hope of producing silica aerogel with an optimum combination of mechanical, thermal and optical properties but have been unsuccessful. While some recipes and methods led to certain properties being optimized, other properties were compromised.
- One property desirable for window applications is high visible transmission. When silica aerogel is provided as part of certain windows, it must be transparent to be considered optically acceptable. Another desirable property is low haze. Silica aerogel must have low haze to be ideal for use with many windows.
- silica aerogels tend to be hydrophilic and thus prone to deterioration of several different properties when exposed to enough moisture. Too much moisture exposure can cause undesirable optical defects, such as reduction in visible transmission and increase in haze. Since some amount of moisture is often present inside insulating glazing units, it is desirable for silica aerogel to be hydrophobic. Hydrophobic silica aerogel can resist deterioration from moisture, making it particularly advantageous for use in window applications.
- the wet gels then must be subjected to further processing, such as excessive solvent baths using expensive solvents, to remove the surfactants and excess hydrophobic agents.
- further processing such as excessive solvent baths using expensive solvents, to remove the surfactants and excess hydrophobic agents.
- This additional processing is not only expensive, but it can actually cause deterioration in optical properties of the resulting silica aerogel.
- hydrophobic silica aerogel having a desirable combination of mechanical, thermal and/or optical properties. It would be particularly desirable to provide silica aerogel that is hydrophobic in combination with having high visible transmission and low haze, optionally together with certain advantageous mechanical properties. It would also be desirable to provide methods of making high quality hydrophobic silica aerogel that are commercially feasible and do not require expensive or excessive processing.
- FIG. 1 is a flow chart depicting a method of making hydrophobic silica wet gel in accordance with certain embodiments
- FIG. 2 is a flow chart depicting a method of making hydrophobic silica aerogel in accordance with certain embodiments
- FIG. 3 is a flow chart depicting a method of making hydrophobic silica wet gel in accordance with certain embodiments
- FIG. 4 is a flow chart depicting a method of making hydrophobic silica aerogel in accordance with certain embodiments
- FIG. 5 is a flow chart depicting a method of making hydrophobic silica wet gel in accordance with certain embodiments
- FIG. 6 is a flow chart depicting a method of making hydrophobic silica aerogel in accordance with certain embodiments
- FIG. 7 is a schematic, broken-away, cross-sectional side view of an article that includes a glass sheet and a hydrophobic silica aerogel sheet in accordance with certain embodiments;
- FIG. 8 is a schematic, partially broken-away, cross-sectional side view of an insulating glazing unit in accordance with certain embodiments.
- FIG. 9 is a schematic, partially broken-away, cross-sectional side view of a laminated glass assembly that includes a hydrophobic silica aerogel sheet in accordance with certain embodiments.
- hydrophobic silica aerogel sheet synthesized from at least two alkoxy silanes and having a visible transmission of at least 97.8% and a haze value of 3% or less.
- the hydrophobic silica aerogel sheet can also include at least one of the following features (A) through (E):
- the hydrophobic silica aerogel sheet can optionally include at least two of the features (A) through (E), at least three of the features (A) through (E), at least four of the features (A) through (E), or all of the features (A) through (E). Also, in some cases, the visible transmission of the hydrophobic silica aerogel sheet is at least 98.6%, and the haze value is 2.5% or less. In further cases, the visible transmission of the hydrophobic silica aerogel sheet is at least 99%, and the haze value is 2% or less.
- the water contact angle in feature (A) can optionally be at least 100°, such as at least 110° or at least 120°.
- the flexural modulus in feature (C) can optionally be 1500 kPa or less. Further, the specific surface area in feature (D) can optionally be at least 800 m 2 /g. Even further, the average pore diameter in feature (E) can optionally be 27 nm or less.
- hydrophobic silica aerogel sheet synthesized from at least two alkoxy silanes and having a visible transmission of at least 98% and a haze value of 2% or less.
- the hydrophobic silica aerogel sheet can also include at least one of the following features (A) through (E):
- (E) an average pore diameter of 29 nm or less.
- the hydrophobic silica aerogel sheet can optionally include at least two of the features (A) through (E), at least three of the features (A) through (E), at least four of the features (A) through (E), or all of the features (A) through (E).
- hydrophobic silica aerogel sheet synthesized from at least two alkoxy silanes and having a visible transmission of at least 98.6% and a haze value of 1.5% or less.
- the hydrophobic silica aerogel sheet can also include at least one of the following features (A) through (E):
- (E) an average pore diameter of 28 nm or less.
- the hydrophobic silica aerogel sheet can optionally include at least two of the features (A) through (E), at least three of the features (A) through (E), at least four of the features (A) through (E) or all of the features (A) through (E).
- a first alkoxy silane of the two alkoxy silanes is selected from methyl silicate 51, tetramethoxysilane and tetraethoxy silane
- a second alkoxy silane of the two alkoxysilanes is selected from methyltrimethoxysilane, methyltri ethoxysilane, ethyltrimethoxysilane and propyltrimethoxysilane.
- a first alkoxy silane of the two alkoxy silanes is selected from methyl silicate 51 and tetramethoxy silane
- a second alkoxy silane of the two alkoxy silanes is selected from methyltrimethoxysilane and methyltriethoxysilane.
- the first alkoxysilane is methyl silicate 51 and the second alkoxy silane is methyltrimethoxy silane.
- the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltriethoxysilane.
- first alkoxysilane is tetramethoxysilane and the second alkoxysilane is methyltrimethoxysilane. In even further cases, the first alkoxysilane is tetramethoxysilane and the second alkoxysilane is methyltriethoxysilane.
- Certain embodiments provide a method of making a hydrophobic silica aerogel, comprising the steps of: synthesizing a hydrophobic silica wet gel from a first alkoxysilane and a second alkoxy silane, wherein the first alkoxy silane is selected from methyl silicate 51 and tetramethoxy silane (also known as tetramethyl orthosilicate), and the second alkoxysilane is methyltrimethoxysilane; aging the hydrophobic silica wet gel for an aging time period; and subjecting the hydrophobic silica wet gel to drying, for example critical point drying, to form a hydrophobic silica aerogel having a shrinkage value of 4% or less, for example 3.5% or less, 3% or less, 2.5% or less, 2% or less or 1.75% or less.
- the first alkoxy silane is methyl silicate 51. In other cases, the first alkoxy silane is tetramethoxy silane.
- the method can further include subjecting the hydrophobic silica wet gel to solvent extraction with an extraction solvent (e.g., methanol) for an extraction time period of less than 24 hours (e.g., less than 20 hours). Also, in some cases, the method can be devoid of using a surfactant. Additionally or alternatively, the method can be devoid of using a hydrophobic agent other than the second alkoxysilane.
- an extraction solvent e.g., methanol
- the step of aging the hydrophobic silica wet gel can comprise aging the hydrophobic silica wet gel at room temperature.
- the aging time period can be at least 7 days (168 hours), at least 8 days (192 hours), at least 9 days (216 hours) or at least 10 days (240 hours).
- the aging time period can be a time period until which structural changes of the hydrophobic silica wet gel no longer occur.
- the hydrophobic silica aerogel prepared according to this method can have a visible transmission of at least 97.8% and a haze value of 3% or less, for example a visible transmission of at least 98% and a haze value of 3% or less, a visible transmission of at least 98.6% and a haze value of 2.5 % or less, or a visible transmission of at least 99% and a haze value of 2% or less.
- the hydrophobic silica aerogel prepared according to this method can have a water contact angle of at least 90%, for example at least 100% or at least 110%.
- a method of making a hydrophobic silica aerogel comprising the steps of: preparing a silica wet gel from a precursor material comprising a first alkoxysilane, solvent, catalyst and water, wherein the first alkoxysilane is selected from methyl silicate 51 and tetramethoxy silane; preparing a hydrophobic treatment solution from a second alkoxysilane and diluent, wherein the second alkoxysilane is selected from methyltrimethoxysilane and methyltri ethoxysilane; exposing the silica wet gel to the hydrophobic treatment solution to form a hydrophobic silica wet gel; aging either the silica wet gel or the hydrophobic silica wet gel for an aging time period; subjecting the hydrophobic silica wet gel to solvent extraction with an extraction solvent for an extraction time period of less than 24 hours (e.g., less than 20 hours); and subjecting the hydrophobic silica wet gel
- the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltrimethoxysilane. In other cases, the first alkoxysilane is tetramethoxy silane and the second alkoxysilane is methyltrimethoxysilane. Also, in other cases, the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltriethoxysilane. In yet other cases, the first alkoxy silane is tetramethoxy silane and the second alkoxy silane is methyltriethoxysilane.
- the method can further include aging the silica wet gel or the hydrophobic silica wet gel at room temperature.
- the aging time period can be at least 7 days (168 hours), at least 8 days (192 hours), at least 9 days (216 hours) or at least 10 days (240 hours).
- the aging time period can be a time period until which structural changes of the hydrophobic silica wet gel no longer occur.
- the step of subjecting the hydrophobic silica wet gel to drying forms the hydrophobic silica aerogel such that less than 1% solvent remains within the hydrophobic silica aerogel. Further, in some cases, the step of subjecting the hydrophobic silica wet gel to drying forms the hydrophobic silica aerogel with a shrinkage value of 4% or less, for example 3.5% or less, 3% or less, 2.5% or less, 2% or less or 1.75% or less.
- the method can also be devoid of using a surfactant. Additionally or alternatively, the method can be devoid of using a hydrophobic agent other than the hydrophobic treatment solution. Further, in certain cases, each of the solvent, the diluent and the extraction solvent is methanol.
- the hydrophobic silica aerogel prepared according to this method can have a visible transmission of at least 97.8% and a haze value of 3% or less, for example a visible transmission of at least 98% and a haze value of 3% or less, a visible transmission of at least 98.6% and a haze value of 2.5 % or less, or a visible transmission of at least 99% and a haze value of 2% or less.
- the hydrophobic silica aerogel prepared according to this method can have a water contact angle of at least 90%, for example at least 100% or at least 110%.
- a method of making a hydrophobic silica aerogel comprising the steps of: preparing a first solution by mixing a first alkoxysilane and solvent, wherein the first alkoxysilane is selected from methyl silicate 51 and tetramethoxysilane; preparing a second solution by mixing solvent, ammonium hydroxide and water; mixing the first solution and the second solution together; allowing components in the first solution and the second solution to react to form a silica wet gel; preparing a third solution by combining methyltnmethoxysilane and diluent; adding the third solution to the silica wet gel; allowing the third solution to react with the silica wet gel to form a hydrophobic silica wet gel; aging either the silica wet gel or the hydrophobic silica wet gel for an aging time period; subjecting the hydrophobic silica wet gel to solvent extraction with an extraction solvent; subjecting the hydrophobic
- the first alkoxy silane is methyl silicate 51. In other cases, the first alkoxy silane is tetramethoxysilane.
- the step of aging can comprise aging the silica wet gel or the hydrophobic silica wet gel at room temperature.
- the aging time period can be at least 7 days (168 hours), at least 8 days (192 hours), at least 9 days (216 hours) or at least 10 days (240 hours).
- the aging time period can be a time period until which structural changes of the hydrophobic silica wet gel no longer occur.
- the step of subjecting the hydrophobic silica wet gel to solvent extraction is performed during an extraction time period of less than 24 hours (e.g., less than 20 hours).
- the step of subjecting the hydrophobic silica wet gel to drying can form the hydrophobic silica aerogel such that less than 1% solvent remains within the hydrophobic silica aerogel. Also, in some cases, the step of subjecting the hydrophobic silica wet gel to drying forms the hydrophobic silica aerogel with a shrinkage value of 4% or less, for example 3.5% or less, 3% or less, 2.5% or less, 2% or less or 1.75% or less. [0034] Also, in some cases, the method can be devoid of using a surfactant. Additionally or alternatively, the method can be devoid of using a hydrophobic agent other than the third solution.
- each of the solvent, the diluent and the extraction solvent is methanol.
- the hydrophobic silica aerogel prepared according to this method can have a visible transmission of at least 97.8% and a haze value of 3% or less, for example a visible transmission of at least 98% and a haze value of 3% or less, a visible transmission of at least 98.6% and a haze value of 2.5 % or less, or a visible transmission of at least 99% and a haze value of 2% or less.
- the hydrophobic silica aerogel prepared according to this method can have a water contact angle of at least 90%, for example at least 100% or at least 110%.
- a method of making a hydrophobic silica aerogel comprising the steps of: preparing a silica wet gel from a precursor material comprising a first alkoxysilane, solvent, catalyst and water, wherein the first alkoxysilane is selected from methyl silicate 51 and tetramethoxy silane; aging the silica wet gel for an aging time period; preparing a hydrophobic treatment solution from a second alkoxysilane, catalyst and diluent, wherein the second alkoxysilane is selected from methyltrimethoxysilane and methyltri ethoxysilane; adding the hydrophobic treatment solution to an extraction solvent to form a solvent exchange solution; subjecting the silica wet gel to the solvent exchange solution for an extraction time period of less than 24 hours and allowing components in the solvent exchange solution to react with the silica wet gel to form a hydrophobic silica wet gel; and subjecting the hydrophobic silic
- the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltrimethoxysilane. In other cases, the first alkoxysilane is tetramethoxy silane and the second alkoxysilane is methyltrimethoxysilane. Also, in other cases, the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltriethoxysilane. In yet other cases, the first alkoxysilane is tetramethoxysilane and the second alkoxysilane is methyltriethoxysilane.
- the step of aging can comprise aging the silica wet gel or the hydrophobic silica wet gel at room temperature.
- the aging time period can be at least 7 days (168 hours), at least 8 days (192 hours), at least 9 days (216 hours) or at least 10 days (240 hours).
- the aging time period can be a time period until which structural changes of the hydrophobic silica wet gel no longer occur.
- the step of subjecting the hydrophobic silica wet gel to the solvent exchange solution is performed during an extraction time period of less than 24 hours (e.g., less than 20 hours).
- the step of subjecting the hydrophobic silica wet gel to drying can form the hydrophobic silica aerogel such that less than 1% solvent remains within the hydrophobic silica aerogel. Also, in some cases, the step of subjecting the hydrophobic silica wet gel to drying forms the hydrophobic silica aerogel with a shrinkage value of 4% or less, for example 3.5% or less, 3% or less, 2.5% or less, 2% or less or 1.75% or less.
- the method can be devoid of using a surfactant. Additionally or alternatively, the method can be devoid of using a hydrophobic agent other than the hydrophobic treatment solution.
- each of the solvent, the diluent and the extraction solvent is methanol.
- the hydrophobic silica aerogel prepared according to this method can have a visible transmission of at least 97.8% and a haze value of 3% or less, for example a visible transmission of at least 98% and a haze value of 3% or less, a visible transmission of at least 98.6% and a haze value of 2.5 % or less, or a visible transmission of at least 99% and a haze value of 2% or less.
- the hydrophobic silica aerogel prepared according to this method can have a water contact angle of at least 90%, for example at least 100% or at least 110%.
- a method of making a hydrophobic silica aerogel comprising the steps of: preparing a first solution by mixing a first alkoxysilane and solvent, wherein the first alkoxysilane is selected from methyl silicate 51 and tetramethoxysilane; preparing a second solution by mixing ammonium hydroxide and water; mixing the first solution and the second solution together; allowing components in the first solution and the second solution to react to form a silica wet gel; aging the silica wet gel for an aging time period; preparing a third solution by mixing catalyst and solvent; preparing a fourth solution by mixing a second alkoxysilane, catalyst and diluent, wherein the second alkoxysilane is selected from methyltrimethoxysilane and methyltri ethoxysilane; preparing a solvent exchange solution by mixing the third solution, the fourth solution and an extraction solvent; subjecting the silica wet gel to the solvent exchange solution for
- the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltrimethoxysilane. In other cases, the first alkoxysilane is tetramethoxy silane and the second alkoxysilane is methyltrimethoxysilane. Also, in other cases, the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltriethoxysilane. In yet other cases, the first alkoxy silane is tetramethoxy silane and the second alkoxy silane is methyltriethoxysilane.
- the step of aging can comprise aging the silica wet gel or the hydrophobic silica wet gel at room temperature.
- the aging time period can be at least 7 days (168 hours), at least 8 days (192 hours), at least 9 days (216 hours) or at least 10 days (240 hours).
- the aging time period can be a time period until which structural changes of the hydrophobic silica wet gel no longer occur.
- the step of subjecting the hydrophobic silica wet gel to the solvent exchange solution is performed during an extraction time period of less than 24 hours (e.g., less than 20 hours).
- the step of subjecting the hydrophobic silica wet gel to drying can form the hydrophobic silica aerogel such that less than 1% solvent remains within the hydrophobic silica aerogel. Also, in some cases, the step of subjecting the hydrophobic silica wet gel to drying forms the hydrophobic silica aerogel with a shrinkage value of 4% or less, for example 3.5% or less, 3% or less, 2.5% or less, 2% or less or 1.75% or less. [0042] Also, the method can be devoid of using a hydrophobic agent other than the second alkoxy silane in the solvent exchange solution. Further, in certain cases, each of the solvent, the diluent and the extraction solvent is methanol.
- the hydrophobic silica aerogel prepared according to this method can have a visible transmission of at least 97.8% and a haze value of 3% or less, for example a visible transmission of at least 98% and a haze value of 3% or less, a visible transmission of at least 98.6% and a haze value of 2.5 % or less, or a visible transmission of at least 99% and a haze value of 2% or less.
- the hydrophobic silica aerogel prepared according to this method can have a water contact angle of at least 90%, for example at least 100% or at least 110%.
- a method of making a hydrophobic silica aerogel comprising the steps of: preparing a first solution by mixing a first alkoxysilane and solvent; preparing a second solution by mixing solvent, base catalyst and water; mixing the first solution and the second solution together; allowing components in the first solution and the second solution to react to form a silica wet gel; preparing a third solution by combining a second alkoxysilane and diluent; adding the third solution to the silica wet gel; allowing components in the third solution and the silica wet gel to react to form a hydrophobic silica wet gel; and drying the hydrophobic silica wet gel to form a hydrophobic silica aerogel having a visible transmission of at least 97.8% and a haze value of 3% or less.
- the first alkoxysilane can be selected from methyl silicate 51, tetramethoxy silane and tetraethoxy silane
- the second alkoxysilane can be selected from methyltrimethoxysilane, methyltriethoxysilane, ethyltrimethoxysilane and propyltrimethoxysilane.
- the first alkoxysilane is selected from methyl silicate 51 and tetramethoxy silane
- the second alkoxy silane can be selected from methyltrimethoxysilane and methyltriethoxysilane.
- the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltrimethoxysilane. In other cases, the first alkoxysilane is methyl silicate 51 and the second alkoxysilane is methyltriethoxysilane. In further cases, the first alkoxysilane is tetramethoxysilane and the second alkoxysilane is methyltrimethoxysilane. In even further cases, the first alkoxysilane is tetramethoxysilane and the second alkoxysilane is methyltriethoxysilane.
- the hydrophobic silica aerogel prepared according to either method can further include at least one of the features (A) through (F):
- the hydrophobic silica aerogel prepared by either method can optionally include at least two of the features (A) through (F), at least three of the features (A) through (F), at least four of the features (A) through (F), at least five of the features (A) through (F), or all of the features (A) through (F).
- the visible transmission of the hydrophobic silica aerogel sheet is at least 98.6%, and the haze value is 2.5% or less.
- the visible transmission of the hydrophobic silica aerogel sheet is at least 99%, and the haze value is 2% or less.
- the water contact angle in feature (A) can optionally be at least 100°, such as at least 110° or at least 120°.
- the flexural modulus in feature (C) can optionally be 4500 kPa or less. Further, the specific surface area in feature (D) can optionally be at least 800 m 2 /g. Even further, the average pore diameter in feature (E) can optionally be 27 nm or less.
- the hydrophobic silica aerogel prepared according to either method can further include at least one of the features (A) through (F):
- the prepared hydrophobic silica aerogel can include at least two of the features (A) through (F), at least three of the features (A) through (F), at least four of the features (A) through (F), at least five of the features (A) through (F), or all of the features (A) through (F).
- the hydrophobic silica aerogel prepared according to either method can have a visible transmission of at least 98.6% and a haze value of 1.5% or less.
- the hydrophobic silica aerogel can further include at least one of the features (A) through (F):
- the prepared hydrophobic silica aerogel can optionally include at least two of the features (A) through (F), at least three of the features (A) through (F), at least four of the features (A) through (F), at least five of the features (A) through (F), or all of the features (A) through (F).
- silica wet gel refers to a material that is obtained by allowing components of a precursor material to react to form silica wet gel.
- the precursor material serves as an intermediate product that is used to form silica wet gel.
- sica aerogel refers to material that is obtained by removing liquid from silica wet gel material and replacing the liquid with gas or vacuum.
- hydrophobic silica wet gel refers to silica wet gel that resists absorbing moisture.
- hydrophobic silica aerogel refers to silica aerogel that resists absorbing moisture.
- Certain embodiments provide a precursor material and a hydrophobic agent for synthesizing a hydrophobic silica wet gel.
- the precursor material serves as an intermediate product that is used to form silica wet gel, which is treated with the hydrophobic agent to form a hydrophobic silica wet gel.
- the precursor material comprises a first alkoxysilane, and the hydrophobic agent comprises a second alkoxysilane.
- the precursor material comprises a first alkoxysilane, solvent, water and base catalyst.
- the hydrophobic agent comprises a second alkoxysilane.
- Applicant has identified a “sweet spot” of weight percentage ranges for these components along with a molar ratio range of the first alkoxy silane: second alkoxysilane that can be used to form hydrophobic silica wet gel and hydrophobic silica aerogel having a surprising combination of optical, mechanical and/or thermal properties. Particular embodiments using specific methods, weight percentages and molar ratios will be discussed.
- the first alkoxysilane is selected from methyl silicate 51 (MS-51) and tetramethyl orthosilicate (also known as tetramethoxy silane) (TMOS).
- the second alkoxysilane can be an organo-silane selected from methyltnmethoxysilane (MTMS), methyltriethoxysilane (MTES), ethyltrimethoxysilane (ETMS) and propyltnmethoxysilane (PTMS).
- MTMS methyltnmethoxysilane
- MTES methyltriethoxysilane
- ETMS ethyltrimethoxysilane
- PTMS propyltnmethoxysilane
- the first alkoxysilane is MS-51 and the second alkoxysilane is MTMS.
- the first alkoxysilane is MS-51 and the second alkoxysilane is MTES.
- the first alkoxysilane is TMOS and the second alkoxysilane is MTMS.
- the first alkoxy silane is TMOS and the second alkoxy silane is MTES.
- the precursor material comprises MS-51 as the first alkoxysilane, methanol as the solvent, and ammonium hydroxide as the base catalyst, while the hydrophobic agent comprises MTMS as the second alkoxysilane.
- the precursor material comprises MS-51 as the first alkoxysilane, methanol as the solvent, and ammonium hydroxide as the base catalyst, while the hydrophobic agent comprises MTES as the second alkoxysilane.
- the precursor material comprises TMOS as the first alkoxysilane, methanol as the solvent, and ammonium hydroxide as the base catalyst, while the hydrophobic agent comprises MTMS as the second alkoxysilane.
- the precursor material comprises TMOS as the first alkoxysilane, methanol as the solvent, and ammonium hydroxide as the base catalyst, while the hydrophobic agent comprises MTES as the second alkoxysilane.
- the hydrophobic agent includes the second alkoxysilane.
- the hydrophobic agent is a solution that includes the second alkoxysilane and diluent.
- the hydrophobic agent is a solvent extraction solution that includes the second alkoxysilane, diluent, catalyst and solvent.
- components in a first solution, a second solution, a third solution, a fourth solution and a fifth solution are present within selected weight percentages.
- Applicant has identified recipe components along with a “sweet spot” of weight percentage ranges that can be used to form hydrophobic silica wet gel and hydrophobic silica aerogel having an exceptional combination of properties.
- weight percent refers to weight percent of a component in a single solution used to form hydrophobic wet gel (e.g., in the first solution, the second solution, the third solution, the fourth solution or the fifth solution). Further, as used herein, “total weight percent” refers to total weight percent of a component used to form hydrophobic silica wet gel. For example, if three solutions are used to form the hydrophobic silica wet gel, the total weight percent of a component is the total weight percent of that component in the combination of the first solution, the second solution and the third solution.
- the total weight percent of a component is the total weight percent of that component in the combination of the first solution, the second solution, the third solution and the fourth solution.
- the total weight percent of a component is the total weight percent of that component in the combination of the first solution, the second solution, the third solution, the fourth solution and the fifth solution.
- FIG. 1 illustrates a method 200A of preparing a hydrophobic silica wet gel according to certain embodiments.
- the method 200A includes a step 205 of preparing a first solution by mixing a first alkoxysilane and solvent, a step 210 of preparing a second solution by mixing solvent, catalyst and water, a step 215 of mixing the first solution and the second solution together to form a mixed solution, a step 220 of allowing components in the mixed solution to react to form silica wet gel, a step 225 of aging the silica wet gel for a period of time, a step 230 of preparing a third solution by mixing a second alkoxysilane and diluent, a step 235 of adding the third solution to the silica wet gel before aging is complete, and a step 240 of allowing the third solution to react with the silica wet gel to form hydrophobic
- step 205 comprises preparing the first solution by mixing a first alkoxysilane and methanol
- step 210 comprises preparing a second solution by mixing methanol, ammonium hydroxide and water
- step 230 comprises preparing a third solution by mixing an organo-silane and methanol.
- hydrophobic treatment is performed before the silica wet gel aging is complete.
- the first alkoxy silane is MS-51.
- MS-51 provides desirable results because it is pre-hydrolyzed.
- a hydrolysis reaction in the precursor material is absent, which leads to a lower condensation rate and thus a lower nucleation rate.
- Lower nucleation rates allow the formation of a three- dimensional polymer structure with smaller particle sizes.
- the resulting silica aerogel therefore has less scattering of light and therefore reduced haze and increased transmissivity.
- aerogel particle size is desirably less than 5 nm to have the lowest possible light scattering and thus acceptable haze and transmissivity.
- the precursor material comprises methanol as the solvent.
- the resulting aerogel material has less haze and less optical distortion than with other solvents.
- the precursor material comprises ammonium hydroxide as the catalyst.
- ammonium hydroxide as the catalyst, the resulting aerogel material has less haze and less optical distortion than with other catalysts.
- the first alkoxysilane is MS-51 and the second alkoxysilane is MTMS.
- the method 200A makes a hydrophobic silica wet gel having a density of between 100 mg/cc and 200 mg/cc, and the MS-51 and MTMS can be provided in a controlled amount selected to provide a molar ratio ofMS-51:MTMS of greater than or equal to 0.95: 1 and less than or equal to 2.55:1.
- the molar ratio of MS-51 :MTMS can also be greater than or equal to 0.98: 1 and less than or equal to 1.43 : 1 , or greater than or equal to 1.3 : 1 and less than or equal to 1.7 : 1.
- the density is between 120 mg/cc and 200 mg/cc
- the molar ratio of MS-51 :MTMS is greater than or equal to 1.2:1 and less than or equal to 2.55: 1, for example greater than or equal to 1.25: 1 and less than or equal to 1.43: 1 or greater than or equal to 1.60: 1 and less than or equal to 1.71 : 1.
- the density is between 120 mg/cc and 150 mg/cc and the molar ratio of MS-51 :MTMS is greater than or equal to 1.2: 1 and less than or equal to 2: 1 , for example greater than or equal to 1.25 : 1 and less than or equal to 1.29: 1 or greater than or equal to 1.60: 1 and less than or equal to 1.66: 1.
- the method 200A makes a hydrophobic silica wet gel having a density of between 100 mg/cc and 200 mg/cc, and the MS -51 has a total weight percent of greater than or equal to 10% and less than or equal to 25% and the MTMS has a total weight percent of greater than or equal to 2% and less than or equal to 5%.
- the total weight percent represents a total weight percent of a component in the first, second and third solutions.
- the density of the hydrophobic silica wet gel is between 120 mg/cc and 150 mg/cc and the total weight percent of the MS-51 is greater than or equal to 13% and less than or equal to 21%, and the total weight percent of the MTMS is greater than or equal to 2% and less than or equal to 4%.
- the first alkoxysilane is MS-51
- the second alkoxysilane is MTMS
- the solvent and the diluent is methanol
- the catalyst is ammonium hydroxide.
- the method 200A makes a hydrophobic silica wet gel having a density of between 100 mg/cc and 200 mg/cc, and the MS-51 has a total weight percent of greater than or equal to 10% and less than or equal to 25%, the MTMS has a total weight percent of greater than or equal to 2% and less than or equal to 5%, the methanol has a total weight percent of greater than or equal to 59% and less than or equal to 76%, the water has a total weight percent of greater than or equal to 10% and less than or equal to 14% and the ammonium hydroxide has a total weight percent of greater than or equal to 0.010% and less than or equal to 0.14%.
- the method 200A makes a hydrophobic silica wet gel having a density of between 120 mg/cc and 150 mg/cc, and the MS-51 has a total weight percent of greater than or equal to 13% and less than or equal to 21%, the MTMS has a total weight percent of greater than or equal to 2% and less than or equal to 4%, the methanol has a total weight percent of greater than or equal to 66% and less than or equal to 73%, the water has a total weight percent of greater than or equal to 10% and less than or equal to 12% and the ammonium hydroxide has a total weight percent of greater than or equal to 0.010% and less than or equal to 0. 14%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30% and less than or equal to 56% and methanol at a weight percent of greater than or equal to 44% and less than or equal to 70%
- the second solution comprises methanol at a weight percent of greater than or equal to 58% and less than or equal to 68%
- water at a weight percent of greater than or equal to 32% and less than or equal to 41%
- ammonium hydroxide at a weight percent of greater than or equal to 0.03% and less than or equal to 0.4%
- the third solution comprises methanol at a weight percent of greater than or equal to 84% and less than or equal to 90% and MTMS at a weight percent of greater than or equal to 10% and less than or equal to 16%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 36% and less than or equal to 49% and methanol at a weight percent of greater than or equal to 51% and less than or equal to 64%
- the second solution comprises methanol at a weight percent of greater than or equal to 65% and less than or equal to 67%, water at a weight percent of greater than or equal to 32% and less than or equal to 35%, and ammonium hydroxide at a weight percent of greater than or equal to 0.03% and less than or equal to 0.4%
- the third solution comprises methanol at a weight percent of greater than or equal to 86% and less than or equal to 90% and MTMS at a weight percent of greater than or equal to 10% and less than or equal to 14%.
- the MTMS is provided in a controlled amount to provide a molar ratio of the MS-51 :MTMS of greater than or equal to 0.95: 1 and less than or equal to 2.55: 1.
- the molar ratio is greater than or equal to 0.95: 1 and less than or equal to 2: 1, such as greater than or equal to 0.95: 1 and less than or equal to 1.2: 1.
- the molar ratio is greater than or equal to 1.2: 1 and less than or equal to 2.55: 1, such as greater than or equal to 1.2: 1 and less than or equal to 2: 1.
- the MS-51 has a total weight percent of greater than or equal to 10.775% and less than or equal to 24.032% and the MTMS has a total weight percent of greater than or equal to 2.593% and less than or equal to 3.171%.
- the MS-51 has a total weight percent of greater than or equal to 10.775% and less than or equal to 20.399% and the MTMS has a total weight percent of greater than or equal to 2.871% and less than or equal to 3. 171%.
- the MS-51 has a total weight percent of greater than or equal to 10.775% and less than or equal to 13.494% and the MTMS has a total weight percent of greater than or equal to 3.12% and less than or equal to 3.171%.
- the MS-51 has a total weight percent of greater than or equal to 13.494% and less than or equal to 24.032% and the MTMS has a total weight percent of greater than or equal to 2.593% and less than or equal to 3.12%. In even further cases, the MS-51 has a total weight percent of greater than or equal to 13.494% and less than or equal to 20.399% and the MTMS has a total weight percent of greater than or equal to 2.871% and less than or equal to 3.12%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 55.56% and methanol at a weight percent of greater than or equal to 44.44% and less than or equal to 69. 16%
- the second solution comprises methanol at a weight percent of greater than or equal to 58.63% and less than or equal to 67.54%, water at a weight percent of greater than or equal to 32.
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89. 17%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.775% and less than or equal to 24.032%, MTMS at a total weight percent of greater than or equal to 2.593% and less than or equal to 3.171%, methanol at atotal weight percent of greater than or equal to 59.809% and less than or equal to 74.442%, water at a total weight percent of greater than or equal to 11.506% and less than or equal to 13.442% and ammonium hy droxide at a total weight percent of greater than or equal to 0.096% and less than or equal to 0. 124%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 51.06% and methanol at a weight percent of greater than or equal to 51.06% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 66.94% and less than or equal to 67.54%
- water at a weight percent of greater than or equal to 32. 16% and less than or equal to 32.76%
- ammonium hydroxide at a weight percent of about 0.3%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89. 17%.
- the resulting hydrophobic silica wet gel obtained by method 200 A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.775% and less than or equal to 20.399%, MTMS at a total weight percent of greater than or equal to 2.871% and less than or equal to 3.171%, methanol at a total weight percent of greater than or equal to 66.217% and less than or equal to 74.442%, water at a total weight percent of greater than or equal to 10.417% and less than or equal to 11.506% and ammonium hydroxide at a total weight percent of greater than or equal to 0.096% and less than or equal to 0.106%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 36.84% and methanol at a weight percent of greater than or equal to 63.16% and less than or equal 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 66.94% and less than or equal to 67.54%
- water at a weight percent of greater than or equal to 32. 16% and less than or equal to 32.76%
- ammonium hydroxide at a weight percent of about 0.3%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89. 17%.
- the resulting hydrophobic silica wet gel obtained by method 200 A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.775% and less than or equal to 13.494%, MTMS at a total weight percent of greater than or equal to 3.12% and less than or equal to 3.171 %, methanol at a total weight percent of greater than or equal to 71.961% and less than or equal to 74.442%, water at a total weight percent of greater than or equal to 11.321% and less than or equal to 11.506% and ammonium hydroxide at a total weight percent of greater than or equal to 0.104% and less than or equal to 0.106%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises MS- 51 at a weight percent of greater than or equal to 36.84% and less than or equal to 55.56% and methanol at a weight percent of greater than or equal to 44.44% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 58.63% and less than or equal to 66.94%
- water at a weight percent of greater than or equal to 32.76% and less than or equal to 41%
- ammonium hydroxide at a weight percent of greater than or equal to 0.3% and less than or equal to 0.38%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 13.494% and less than or equal to 24.032%, MTMS at a total weight percent of greater than or equal to 2.593% and less than or equal to 3.12%, methanol at a total weight percent of greater than or equal to 59.809% and less than or equal to 71.961%, water at a total weight percent of greater than or equal to 11.321% and less than or equal to 13.442% and ammonium hydroxide at a total weight percent of greater than or equal to 0.096% and less than or equal to 0. 124%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 36.84% and less than or equal to 48.94% and methanol at a weight percent of greater than or equal to 51.06% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of about 66.94%
- water at a weight percent of about 32.76%
- ammonium hydroxide at a weight percent of about 0.3%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89. 17%.
- the resulting hydrophobic silica wet gel obtained by method 200 A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 13.494% and less than or equal to 20.399%, MTMS at a total weight percent of greater than or equal to 2.871% and less than or equal to 3.12%, methanol at a total weight percent of greater than or equal to 66.217% and less than or equal to 71.961%, water at a total weight percent of greater than or equal to 10.417% and less than or equal to 11.321% and ammonium hydroxide at a total weight percent of greater than or equal to 0.096% and less than or equal to 0.104%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- the MTMS is provided in a controlled amount to provide a molar ratio of the MS-51 : MTMS of greater than or equal to .98:1 and less than or equal to 1.43: 1.
- the molar ratio is greater than or equal to .98: 1 and less than or equal to 1.29: 1, such as greater than or equal to .98: 1 and less than or equal to 1.25: 1.
- the molar ratio is greater than or equal to 1.25:1 and less than or equal to 1.43: 1, such as greater than or equal to 1.25: 1 and less than or equal to 1.29:1.
- the MS-51 has a total weight percent of greater than or equal to 10.775% and less than or equal to 22.077% and the MTMS has a total weight percent of greater than or equal to 3.12% and less than or equal to 4.467%. In certain cases, the MS-51 has a total weight percent of greater than or equal to 10.775% and less than or equal to 17.105% and the MTMS has a total weight percent of greater than or equal to 3.12% and less than or equal to 3.845%. In other cases, the MS-51 has a total weight percent of greater than or equal to 10.775% and less than or equal to 13.493% and the MTMS has a total weight percent of greater than or equal to 3.12% and less than or equal to 3.171%.
- the MS-51 has a total weight percent of greater than or equal to 13.493% and less than or equal to 22.077% and the MTMS has a total weight percent of greater than or equal to 3. 12% and less than or equal to 4.467%. In even further cases, the MS-51 has a total weight percent of greater than or equal to 13.493% and less than or equal to 17. 105% and the MTMS has a total weight percent of greater than or equal to 3.12% and less than or equal to 3.845%.
- the first solution comprises MS- 51 at a weight percent of greater than or equal to 30.84% and less than or equal to 53.73% and methanol at a weight percent of greater than or equal to 46.27% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 63.53% and less than or equal to 67.53%
- water at a weight percent of greater than or equal to 32.43% and less than or equal to 36.42%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 10.83% and less than or equal to 15.41%
- methanol at a weight percent of greater than or equal to 84.6% and less than or equal to 89.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.775% and less than or equal to 22.077%, MTMS at a total weight percent of greater than or equal to 3. 12% and less than or equal to 4.467%, methanol at a total weight percent of greater than or equal to 62.546% and less than or equal to 74.436%, water at a total weight percent of greater than or equal to 10.896% and less than or equal to 11.603% and ammonium hydroxide at a total weight percent of greater than or equal to 0.014% and less than or equal to 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 44.63% and methanol at a weight percent of greater than or equal to 55.37% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 65.31% and less than or equal to 67.53%
- water at a weight percent of greater than or equal to 32.43% and less than 34.64%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 10.83% and less than or equal to 13.18% and methanol at a weight percent of greater than or equal to 86.82% and less than or equal to 89.17%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.775% and less than or equal to 17. 105%, MTMS at a total weight percent of greater than or equal to 3.12% and less than or equal to 3.845%, methanol at a total weight percent of greater than or equal to 67.779% and less than or equal to 74.436%, water at a total weight percent of greater than or equal to 11.256% and less than or equal to 11.603% and ammonium hydroxide at a total weight percent of about 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 36.84% and methanol at a weight percent of greater than or equal to 63.16% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 67.53% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 32.43% and less than or equal to 33.03%
- ammonium hydroxide at a weight percent of about 0.04%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89.17%.
- the resulting hydrophobic silica wet gel obtained by method 200 A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.775% and less than or equal to 13.493%, MTMS at a total weight percent of greater than or equal to 3.12% and less than or equal to 3.171 %, methanol at a total weight percent of greater than or equal to 71.956% and less than or equal to 74.436%, water at a total weight percent of greater than or equal to 11.416% and less than or equal to
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises MS- 51 at a weight percent of greater than or equal to 36.84% and less than or equal to 53.73% and methanol at a weight percent of greater than or equal to 46.27% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 63.53% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 33.03% and less than or equal to 36.42%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 10.83% and less than or equal to 15.41% and methanol at a weight percent of greater than or equal to 84.6% and less than or equal to 89.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 13.493% and less than or equal to 22.077%, MTMS at a total weight percent of greater than or equal to 3. 12% and less than or equal to 4.467%, methanol at a total weight percent of greater than or equal to 62.546% and less than or equal to 71.956%, water at a total weight percent of greater than or equal to 10.896% and less than or equal to 11.416% and ammonium hydroxide at a total weight percent of greater than or equal to 0.014% and less than or equal to 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 36.84% and less than or equal to 44.63% and methanol at a weight percent of greater than or equal to 55.37% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 65.31% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 33.03% and less than or equal to 34.64%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 10.83% and less than or equal to 13.18% and methanol at a weight percent of greater than or equal to 86.82% and less than or equal to 89.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 13.493% and less than or equal to 17.105%, MTMS at atotal weight percent of greater than or equal to 3. 12% and less than or equal to 3.845%, methanol at a total weight percent of greater than or equal to 67.779% and less than or equal to 71.956%, water at a total weight percent of greater than or equal to 11.256% and less than or equal to 11.416% and ammonium hydroxide at a total weight percent of about 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- the MTMS is provided in a controlled amount to provide a molar ratio of the MS-51 :MTMS of greater than or equal to 1.3 : 1 and less than or equal to 1.71 : 1.
- the molar ratio is greater than or equal to 1.3 : 1 and less than or equal to 1.66: 1, such as greater than or equal to 1.3: 1 and less than or equal to 1.60: 1.
- the molar ratio is greater than or equal to 1.60: 1 and less than or equal to 1.71 : 1 , such as greater than or equal to 1.60:1 and less than or equal to 1.66: 1.
- the MS-51 has atotal weight percent of greater than or equal to 10.861% and less than or equal to 22.242% and the MTMS has a total weight percent of greater than or equal to 2.358% and less than or equal to 3.75%. In certain cases, the MS-51 has a total weight percent of greater than or equal to 10.861% and less than or equal to 17.237% and the MTMS has a total weight percent of greater than or equal to 2.358% and less than or equal to 3.1%.
- the MS-51 has a total weight percent of greater than or equal to 10.861% and less than or equal to 13.599% and the MTMS has a total weight percent of greater than or equal to 2.358% and less than or equal to 2.397%. In further cases, the MS-51 has a total weight percent of greater than or equal to 13.599% and less than or equal to 22.242% and the MTMS has a total weight percent of greater than or equal to 2.358 % and less than or equal to 3.75%. In even further cases, the MS-51 has a total weight percent of greater than or equal to 13.599% and less than or equal to 17.237% and the MTMS has a total weight percent of greater than or equal to 2.358% and less than or equal to 3.1%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 53.73% and methanol at a weight percent of greater than or equal to 46.27% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 63.53% and less than or equal to 67.53%
- water at a weight percent of greater than or equal to 32.3973% and less than or equal to 36.42%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 8.35% and less than or equal to 13.18% and methanol at a weight percent of greater than or equal to 86.82% and less than or equal to 91.65%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.861% and less than or equal to 22.242%, MTMS at a total weight percent of greater than or equal to 2.358% and less than or equal to 3.75%, methanol at a total weight percent of greater than or equal to 63.015% and less than or equal to 75.031%, water at a total weight percent of greater than or equal to 10.979% and less than or equal to 11.696% and ammonium hydroxide at a total weight percent of greater than or equal to 0.014% and less than or equal to 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 44.63% and methanol at a weight percent of greater than or equal to 55.34% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 65.31% and less than or equal to 67.53%
- water at a weight percent of greater than or equal to 32.3973% and less than or equal to 34.64%
- ammonium hydroxide at a weight percent of about 0.04%
- the third solution comprises MTMS at a weight percent of greater than or equal to 8.35% and less than or equal to 10.83% and methanol at a weight percent of greater than or equal to 89.17% and less than or equal to 91.65%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.861% and less than or equal to 17.237%, MTMS at a total weight percent of greater than or equal to 2.358% and less than or equal to 3.1%, methanol at a total weight percent of greater than or equal to 68.304% and less than or equal to 75.031%, water at a total weight percent of greater than or equal to 11.344% and less than or equal to 11.696% and ammonium hydroxide at a total weight percent of about 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 36.84% and methanol at a weight percent of greater than or equal to 63.16% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 66.92% and less than or equal to 67.53%
- water at a weight percent of greater than or equal to 32.3973% and less than or equal to 33.03%
- ammonium hydroxide at a weight percent of about 0.04%
- the third solution comprises MTMS at a weight percent of about 8.35% and methanol at a weight percent of about 91.65%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 10.861% and less than or equal to 13.599%, MTMS at a total weight percent of greater than or equal 2.358% and less than or equal to 2.397%, methanol at a total weight percent of greater than or equal to 72.521% and less than or equal to 75.031%, water at a total weight percent of greater than or equal to 11.507% and less than or equal to 11.696% and ammonium hydroxide at a total weight percent of about 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises MS- 51 at a weight percent of greater than or equal to 36.84% and less than or equal to 53.73% and methanol at a weight percent of greater than or equal to 46.27% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 63.53% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 33.03% and less than or equal to 36.42%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 8.35% and less than or equal to 13.18% and methanol at a weight percent of greater than or equal to 86.82% and less than or equal to 91.65%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 13.599% and less than or equal to 22.242%, MTMS at a total weight percent of greater than or equal to 2.358% and less than or equal to 3.75%, methanol at a total weight percent of greater than or equal to 63.015% and less than or equal to 72.521%, water at a total weight percent of greater than or equal to 10.979% and less than or equal to 11.507% and ammonium hydroxide at a total weight percent of greater than or equal to 0.014% and less than or equal to 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 36.84% and less than or equal to 44.63% and methanol at a weight percent of greater than or equal to 55.34% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 65.31% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 33.03% and less than or equal to 34.64%
- ammonium hydroxide at a weight percent of about 0.04%
- the third solution comprises MTMS at a weight percent of greater than or equal to 8.35% and less than or equal to 10.83% and methanol at a weight percent of greater than or equal to 89.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 13.599% and less than or equal to 17.237%, MTMS at a total weight percent of greater than or equal to 2.358% and less than or equal to 3.1%, methanol at a total weight percent of greater than or equal to 68.304% and less than or equal to 72.521%, water at a total weight percent of greater than or equal to 11.344% and less than or equal to 11.507% and ammonium hydroxide at a total weight percent of about 0.015%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- TMOS is used as the first alkoxy silane.
- TMOS provides desirable results because the resulting silica aerogel has less scattering of light and thus reduced haze and increased transmissivity.
- aerogel particle size is desirably less than 5 nm to have the lowest possible light scattering and thus acceptable haze and transmissivity.
- the precursor material comprises methanol as the solvent. Applicant has discovered that by using methanol as the solvent, the resulting aerogel material has less haze and less optical distortion than with other solvents.
- the precursor material comprises ammonium hydroxide as the catalyst. Applicant has discovered that by using ammonium hydroxide as the catalyst, the resulting aerogel material has less haze and less optical distortion than with other catalysts.
- TMOS is used as the first alkoxy silane and an organo-silane is used as the second alkoxysilane.
- the step 205 comprises preparing a first solution by mixing TMOS and methanol
- step 210 comprises preparing a second solution by mixing methanol, ammonium hydroxide and water
- step 230 comprises preparing a third solution by mixing an organo-silane and methanol.
- the organo-silane can be MTMS in some embodiments.
- the MTMS is provided in a controlled amount to provide a molar ratio ofthe TMOS:MTMS of greater than or equal to 3.7: 1 and less than or equal to 9.2: 1.
- the molar ratio is greater than or equal to 3.7: 1 and less than or equal to 6.9: 1, such as greater than or equal to 3.7: 1 and less than or equal to 4.6:1.
- the molar ratio is greater than or equal to 4.6: 1 and less than or equal to 9.2: 1, such as greater than or equal to 4.6: 1 and less than or equal to 6.9: 1.
- the TMOS has a total weight percent of greater than or equal to 13.821% and less than or equal to 28.368% and the MTMS has a total weight percent of greater than or equal to 2.63% and less than or equal to 3.204%.
- the TMOS has a total weight percent of greater than or equal to 13.821% and less than or equal to 23.676% and the MTMS has a total weight percent of greater than or equal to 2.927% and less than or equal to 3.204%.
- the TMOS has a total weight percent of greater than or equal to 13.821% and less than or equal to 16.915% and the MTMS has a total weight percent of greater than or equal to 3.
- the TMOS has a total weight percent of greater than or equal to 16.915% and less than or equal to 28.368% and the MTMS has a total weight percent of greater than or equal to 2.63% and less than or equal to 3. 137%.
- the TMOS has a total weight percent of greater than or equal to 16.915% and less than or equal to 23.676% and the MTMS has a total weight percent of greater than or equal to 2.927% and less than or equal to 3.137%.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.17% and less than or equal to 62.82% and methanol at a weight percent of greater than or equal to 37.18% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 54.96% and less than or equal to 65.66%
- water at a weight percent of greater than or equal to 33.98% and less than or equal to 44.63%
- ammonium hydroxide at a weight percent of greater than or equal to 0.36% and less than or equal to 0.41%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 13.821% and less than or equal to 28.368%, MTMS at a total weight percent of greater than or equal to 2.63% and less than or equal to 3.204%, methanol at a total weight percent of greater than or equal to 55.244% and less than or equal to 71.246%, water at a total weight percent of greater than or equal to 10.604% and less than or equal to 13.633% and ammonium hydroxide at a total weight percent of greater than or equal to 0.112% and less than or equal to 0. 125%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.17% and less than or equal to 55. 11% and methanol at a weight percent of greater than or equal to 44.89% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 64.28% and less than or equal to 65.66%
- water at a weight percent of greater than or equal to 33.98% and less than or equal to 35.35%
- ammonium hydroxide at a weight percent of greater than or equal to 0.36% and less than or equal to 0.37%
- the third solution comprises organo-silane at a weight percent of about 10.83% and methanol at a weight percent of about 89.17%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 13.821% and less than or equal to 23.676%, MTMS at a total weight percent of greater than or equal to 2.927% and less than or equal to 3.204%, methanol at a total weight percent of greater than or equal to 62.681% and less than or equal to 71.246%, water at a total weight percent of greater than or equal to 10.604% and less than or equal to 11.607% and ammonium hydroxide at a total weight percent of greater than or equal to 0.112% and less than or equal to 0.122%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.17% and less than or equal to 44.25% and methanol at a weight percent of greater than or equal to 55.75% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 64.28% and less than or equal to 65.66%
- water at a weight percent of greater than or equal to 33.98% and less than 34.65%
- ammonium hydroxide at a weight percent of about 0.36%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89. 17%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 13.821% and less than or equal to 16.915%, MTMS at a total weight percent of greater than or equal to 3.137% and less than or equal to 3.204%, methanol at a total weight percent of greater than or equal to 68.464% and less than or equal to 71.246%, water at a total weight percent of greater than or equal to 11.364% and less than or equal to 11.607% and ammonium hydroxide at a total weight percent of greater than or equal to 0.120% and less than or equal to 0.122%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 44.25% and less than or equal to 62.82% and methanol at a weight percent of greater than or equal to 37. 18% and less than or equal to 55.75%
- the second solution comprises methanol at a weight percent of greater than or equal to 54.96% and less than or equal to 64.99%
- water at a weight percent of greater than or equal to 34.65% and less than or equal to 44.63%
- ammonium hydroxide at a weight percent of greater than or equal to 0.36% and less than or equal to 0.41%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89.17%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 16.915% and less than or equal to 28.368%, MTMS at a total weight percent of greater than or equal to 2.63% and less than or equal to 3.137%, methanol at a total weight percent of greater than or equal to 55.244% and less than or equal to 68.464%, water at a total weight percent of greater than or equal to 10.604% and less than or equal to 13.633% and ammonium hydroxide at a total weight percent of greater than or equal to 0.112% and less than or equal to 0.125%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 44.25% and less than or equal to 55. 11% and methanol at a weight percent of greater than or equal to 44.89% and less than or equal to 55.75%
- the second solution comprises methanol at a weight percent of greater than or equal to 64.28% and less than or equal to 64.99%
- water at a weight percent of greater than or equal to 34.65% and less than or equal to 35.35%
- ammonium hydroxide at a weight percent of greater than or equal to 0.36% and less than or equal to 0.37%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 16.915% and less than or equal to 23.676%, MTMS at a total weight percent of greater than or equal to 2.927% and less than or equal to 3.137%, methanol at a total weight percent of greater than or equal to 62.681% and less than or equal to 68.464%, water at a total weight percent of greater than or equal to 10.604% and less than or equal to 11.364% and ammonium hydroxide at a total weight percent of greater than or equal to 0.112% and less than or equal to 0. 120%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- the MTMS is provided in a controlled amount to provide a molar ratio of the TMOS:MTMS of greater than or equal to 3.86: 1 and less than or equal to 6. 11 : 1.
- the molar ratio is greater than or equal to 3.86: 1 and less than or equal to 5.79: 1, such as greater than or equal to 3.86: 1 and less than or equal to 4.83: 1.
- the molar ratio is greater than or equal to 4.83: 1 and less than or equal to 6. 11 : 1, such as greater than or equal to 4.83:1 and less than or equal to 5.79: 1.
- the TMOS has a total weight percent of greater than or equal to 13.82% and less than or equal to 30.937% and the MTMS has a total weight percent of greater than or equal to 3. 136% and less than or equal to 4.529%.
- the TMOS has a total weight percent of greater than or equal to 13.82% and less than or equal to 24.684% and the MTMS has a total weight percent of greater than or equal to 3.136% and less than or equal to 3.814%.
- the TMOS has a total weight percent of greater than or equal to 13.82% and less than or equal to 16.914% and the MTMS has a total weight percent of greater than or equal to 3.
- the TMOS has a total weight percent of greater than or equal to 16.914% and less than or equal to 30.937% and the MTMS has a total weight percent of greater than or equal to 3. 136% and less than or equal to 4.529%.
- the TMOS has a total weight percent of greater than or equal to 16.914% and less than or equal to 24.684% and the MTMS has a total weight percent of greater than or equal to 3.136% and less than or equal to 3.814%.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 68.39% and methanol at a weight percent of greater than or equal to 31.61% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 56.38% and less than or equal to 65.65%
- water at a weight percent of greater than or equal to 34.25% and less than or equal to 43.41%
- ammonium hydroxide at a weight percent of greater than or equal to 0.11% and less than or equal to 0.14%
- the third solution comprises MTMS at a weight percent of greater than or equal to 10.83% and less than or equal to 15.41% and methanol at a weight percent of greater than or equal to 84.59% and less than or equal to 89.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 13.82% and less than or equal to 30.937%, MTMS at a total weight percent of greater than or equal to 3.136% and less than or equal to 4.529%, methanol at a total weight percent of greater than or equal to 53.471% and less than or equal to 71.24%. water at a total weight percent of greater than or equal to 11.028% and less than or equal to 11.7% and ammonium hydroxide at a total weight percent of greater than or equal to 0.035% and less than or equal to 0.037%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 58.38% and methanol at a weight percent of greater than or equal to 41.62% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 61.
- the third solution comprises MTMS at a weight percent of greater than or equal to 10.83% and less than or equal to 13.18% and methanol at a weight percent of greater than or equal to 86.82% and less than or equal to 89. 17%.
- the resulting hydrophobic silica wet gel obtained by the method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 13.82% and less than or equal to 24.684%, MTMS at a total weight percent of greater than or equal to 3.136% and less than or equal to 3.814%, methanol at a total weight percent of greater than or equal to 60.322% and less than or equal to 71.24%, water at a total weight percent of greater than or equal to 11.145% and less than or equal to 11.7% and ammonium hydroxide at a total weight percent of greater than or equal to 0.035% and less than or equal to 0.037%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 44.25% and methanol at a weight percent of greater than or equal to 55.75% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 64.97% and less than or equal to 65.65%
- water at a weight percent of greater than or equal to 34.25% and less than or equal to 34.92%
- ammonium hydroxide at a weight percent of about 0.11%
- the third solution comprises MTMS at a weight percent of about 10.83% and methanol at a weight percent of about 89.17%.
- the resulting hydrophobic silica wet gel is thereby synthesized from TMOS at a total weight percent of greater than or equal to 13.82% and less than or equal to 16.914%, MTMS at a total weight percent of greater than or equal to 3.136% and less than or equal to 3.203%, methanol at a total weight percent of greater than or equal to 68.459% and less than or equal to 71.24%, water at a total weight percent of greater than or equal to 11.455% and less than or equal to 11.7% and ammonium hydroxide at a total weight percent of greater than or equal to 0.036% and less than or equal to 0.037%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 44.25% and less than or equal to 68.39% and methanol at a weight percent of greater than or equal to 31.61% and less than or equal to 55.75%
- the second solution comprises methanol at a weight percent of greater than or equal to 56.38% and less than or equal to 64.97%
- water at a weight percent of greater than or equal to 34.92% and less than or equal to 43.41%
- ammonium hydroxide at a weight percent of greater than or equal to 0.
- the third solution comprises MTMS at a weight percent of greater than or equal to 10.83% and less than or equal to 15.41% and methanol at a weight percent of greater than or equal to 84.59% and less than or equal to 89. 17%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 16.914% and less than or equal to 30.937%, MTMS at a total weight percent of greater than or equal to 3.136% and less than or equal to 4.529%, methanol at atotal weight percent of greater than or equal to 53.471% and less than or equal to 68.459%, water at a total weight percent of greater than or equal to 11.028% and less than or equal to 11.455% and ammonium hydroxide at a total weight percent of greater than or equal to 0.035% and less than or equal to 0.036%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 44.25% and less than or equal to 58.38% and methanol at a weight percent of greater than or equal to 41.62% and less than or equal to 55.75%
- the second solution comprises methanol at a weight percent of greater than or equal to 61.
- the third solution comprises MTMS at a weight percent of greater than or equal to 10.83% and less than or equal to 13.18% and methanol at a weight percent of greater than or equal to 86.82% and less than or equal to 89. 17%.
- the resulting hydrophobic silica wet gel obtained by method 200A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 16.914% and less than or equal to 24.684%, MTMS at a total weight percent of greater than or equal to 3.136% and less than or equal to 3.814%, methanol at a total weight percent of greater than or equal to 60.322% and less than or equal to 68.459%, water at a total weight percent of greater than or equal to 11.145% and less than or equal to 11.455% and ammonium hydroxide at a total weight percent of greater than or equal to 0.35% and less than or equal to 0.36%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- FIG. 3 illustrates a method 300 A according to certain embodiments.
- the method includes a step 305 of preparing a first solution by mixing a first alkoxy silane and solvent, a step 310 of preparing a second solution by mixing solvent, catalyst and water, a step 315 of mixing the first solution and the second solution together to form a mixed solution, a step 320 of allowing components in the mixed solution to react to form silica wet gel, a step 325 of aging the silica wet gel for a period of time, a step 330 of preparing a third solution by mixing a second alkoxysilane and diluent, a step 335 of adding the third solution to the silica wet gel after aging is complete, and a step 340 of allowing the third solution to react with the silica wet gel to form hydrophobic silica wet gel.
- the step 335 of adding the third solution to the silica wet gel takes places after the aging step 325 is complete.
- the third solution serves as a hydrophobic agent. Therefore, the silica wet gel is aged completely before making it hydrophobic.
- the first alkoxysilane is MS-51 and MTMS is used as the organo-silane.
- the MTMS is provided in a controlled amount to provide a molar ratio of the MS-51 :MTMS of greater than or equal to 0.95: 1 and less than or equal to 2.55: 1.
- the molar ratio is greater than or equal to 0.95: 1 and less than or equal to 2:1, such as greater than or equal to 0.95: 1 and less than or equal to 1.2: 1.
- the molar ratio is greater than or equal to 1.2: 1 and less than or equal to 2.55: 1, such as greater than or equal to 1.2: 1 and less than or equal to 2: 1.
- the MS-51 has a total weight percent of greater than or equal to 1.815% and less than or equal to 4.771% and the MTMS has a total weight percent of greater than or equal to 0.515% and less than or equal to 0.534%. In certain cases, the MS-51 has a total weight percent of greater than or equal to 1.815% and less than or equal to 3.729% and the MTMS has a total weight percent of greater than or equal to 0.525% and less than or equal to 0.534%. In yet other cases, the MS-51 has a total weight percent of greater than or equal to 1.815% and less than or equal to 2.304% and the MTMS has a total weight percent of greater than equal to 0.533% and less than or equal to 0.534%.
- the MS-51 has a total weight percent of greater than or equal to 2.304% and less than or equal to 4.771% and the MTMS has a total weight percent of greater than or equal to 0.515% and less than or equal to 0.533%. In even further cases, the MS-51 has a total weight percent of greater than or equal to 2.304% and less than or equal to 3.729% and the MTMS has a total weight percent of greater than or equal to 0.525% and less than or equal to 0.533%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 55.56% and methanol at a weight percent of greater than or equal to 44.44% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 58.63% and less than or equal to 67.54%
- water at a weight percent of greater than or equal to 32.
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.815% and less than or equal to 4.771%, MTMS at a total weight percent of greater than or equal to 0.515% and less than or equal to 0.534%, methanol at a total weight percent of greater than or equal to 92.021% and less than or equal to 95.695%, water at a total weight percent of greater than or equal to 1.9% and less than or equal to 2.668% and ammonium hydroxide at a total weight percent of greater than or equal to 0.018% and less than or equal to 0.025%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 48.93% and methanol at a weight percent of greater than or equal to 51.06% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 66.94% and less than or equal to 67.54%
- water at a weight percent of greater than or equal to 32. 16% and less than or equal to 32.76%
- ammonium hydroxide at a weight percent of about 0.3%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.815% and less than or equal to 3.729%, MTMS at atotal weight percent of greater than or equal to 0.525% and less than or equal to 0.534%, methanol at a total weight percent of greater than or equal to 93.823% and less than or equal to 95.695%, water at a total weight percent of greater than or equal to 1.905% and less than or equal to 1.938% and ammonium hydroxide at atotal weight percent of about 0.018%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 36.84% and methanol at a weight percent of greater than or equal to 63.16% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 66.94% and less than or equal to 67.54%
- water at a weight percent of greater than or equal to 32. 16% and less than or equal to 32.76%
- ammonium hydroxide at a weight percent of about 0.3%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at atotal weight percent of greater than or equal to 1.815% and less than or equal to 2.304%, MTMS at atotal weight percent of greater than or equal to 0.533 and less than or equal to 0.534%, methanol at a total weight percent of greater than or equal to 95.213% and less than or equal to 95.695%, water at a total weight percent of greater than or equal to 1.932% and less than or equal 1.938 and ammonium hydroxide at a total weight percent of about 0.018%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises MS- 51 at a weight percent of greater than or equal to 36.84% and less than or equal to 55.56% and methanol at a weight percent of greater than or equal to 44.44% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 58.63% and less than or equal to 66.94%
- water at a weight percent of greater than or equal to 32.76% and less than or equal to 41%
- ammonium hydroxide at a weight percent of greater than or equal to 0.3% and less than or equal to 0.38%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.304% and less than or equal to 4.771%, MTMS at a total weight percent of greater than or equal to 0.515% and less than or equal to 0.533%, methanol at a total weight percent of greater than or equal to 92.021% and less than or equal to 95.213%, water at a total weight percent of greater than or equal to 1.932% and less than or equal to 2.668% and ammonium hydroxide at a total weight percent of greater than or equal to 0.018% and less than or equal to 0.025%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 36.84% and less than or equal to 48.93% and methanol at a weight percent of greater than or equal to 51.06% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of about 66.94%
- water at a weight percent of about 32.76%
- ammonium hydroxide at a weight percent of about 0.3%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.304% and less than or equal to 3.729%, MTMS at a total weight percent of greater than or equal to 0.525% and less than or equal to 0.533%, methanol at a total weight percent of greater than or equal to 93.823% and less than or equal to 95.213%, water at a total weight percent of greater than or equal to 1.905% and less than or equal to 1.932% and ammonium hydroxide at a total weight percent of about 0.02%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- the MTMS is provided in a controlled amount to provide a molar ratio of the MS-5EMTMS of greater than or equal to .98: 1 and less than or equal to 1.43:1.
- the molar ratio is greater than or equal to .98: 1 and less than or equal to 1.29:1, such as greater than or equal to .98:1 and less than or equal to 1.25: 1.
- the molar ratio is greater than or equal to 1.25 : 1 and less than or equal to 1.43: 1 , such as greater than or equal to 1.25: 1 and less than or equal to 1.29:1.
- the MS-51 has a total weight percent of greater than or equal to 1.815% and less than or equal to 3.917% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.793%. In certain cases, the MS-51 has a total weight percent of greater than or equal to 1.815% and less than or equal to 2.955% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.664%.
- the MS-51 has a total weight percent of greater than or equal to 1.815% and less than or equal to 2.304% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.534%. In further cases, the MS- 51 has a total weight percent of greater than or equal to 2.304% and less than or equal to 3.917% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.793%. In even further cases, the MS-51 has a total weight percent of greater than or equal to 2.304% and less than or equal to 2.955% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.664%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 53.73% and methanol at a weight percent of greater than or equal to 46.27% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 63.53% and less than or equal to 67.59%
- water at a weight percent of greater than or equal to 32.43% and less than or equal to 36.42%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.61% and less than or equal to 0.91% and methanol at a weight percent of greater than or equal to 99.39% and less than or equal to 99.09%.
- the resulting hydrophobic silica wet gel is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.815% and less than or equal to 3.917%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.793%, methanol at a total weight percent of greater than or equal to 93.354% and less than or equal to 95.694%, water at atotal weight percent of greater than or equal to 1.933% and less than or equal to 1.954% and ammonium hydroxide at a total weight percent of greater than or equal to 0.003% and less than or equal to 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 44.63% and methanol at a weight percent of greater than or equal to 55.37% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 65.31% and less than or equal to 67.59%
- water at a weight percent of greater than or equal to 32.43% and less than or equal to 34.64%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.61% and less than or equal to 0.76% and methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.815% and less than or equal to 2.955%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.664%, methanol at a total weight percent of greater than or equal to 94.434% and less than or equal to 95.694%, water at a total weight percent of greater than or equal to 1.94% and less than or equal to 1.954% and ammonium hydroxide at atotal weight percent of greater than or equal to 0.003% and less than or equal to 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 36.84% and methanol at a weight percent of greater than or equal to 63.16% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 66.92% and less than or equal to 67.59%
- water at a weight percent of greater than or equal to 32.43% and less than or equal to 33.03%
- ammonium hydroxide at a weight percent of about 0.04%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.815% and less than or equal to 2.304%, MTMS at atotal weight percent of greater than or equal to 0.533% and less than or equal to 0.534, methanol at a total weight percent of greater than or equal to 95.212% and less than or equal to 95.694%, water at a total weight percent of greater than or equal to 1.948% and less than or equal to 1.954% and ammonium hydroxide at a total weight percent of greater than or equal to 0.003% and less than or equal to 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises MS- 51 at a weight percent of greater than or equal to 36.84% and less than or equal to 53.73% and methanol at a weight percent of greater than or equal to 46.27% and less than or equal to 63.13%
- the second solution comprises methanol at a weight percent of greater than or equal to 63.53% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 33.03% and less than or equal to 36.42%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.61% and less than or equal to 0.91% and methanol at a weight percent of greater than or equal to 99.09% and less than or equal to 99.39%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 36.84% and less than or equal to 44.63% and methanol at a weight percent of greater than or equal to 55.37% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 65.31% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 33.03% and less than or equal to 34.64%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.61% and less than or equal to 0.76% and methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.304% and less than or equal to 2.955%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.664%, methanol at a total weight percent of greater than or equal to 94.434% and less than or equal to 95.212%, water at a total weight percent of greater than or equal to 1.944% and less than or equal to 1.948% and ammonium hydroxide at a total weight percent of greater than or equal to 0.003% and less than or equal to 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- the MTMS is provided in a controlled amount to provide a molar ratio of the MS-51 :MTMS of greater than or equal to 1.31 : 1 and less than or equal to 1.72: 1. In specific cases, the molar ratio is greater than or equal to 1.31: 1 and less than or equal to 1.66: 1. In further cases, the molar ratio is greater than or equal to 1.61: 1 and less than or equal to 1.72: 1 , such as greater than or equal to 1.61: 1 and less than or equal to 1.66: 1.
- the MS-51 has a total weight percent of greater than or equal to 1.817% and less than or equal to 3.922% and the MTMS has a total weight percent of greater than or equal to 0.400% and less than or equal to 0.661%. In certain cases, the MS-51 has a total weight percent of greater than or equal to 1.817% and less than or equal to 2.959% and the MTMS has a total weight percent of greater than or equal to 0.400% and less than or equal to 0.532%.
- the MS-51 has a total weight percent of greater than or equal to 1.817% and less than or equal to 2.307% and the MTMS has a total weight percent of greater than or equal to 0.400% and less than or equal to 0.401%. In further cases, the MS- 51 has a total weight percent of greater than or equal to 2.307% and less than or equal to 3.922% and the MTMS has a total weight percent of greater than or equal to 0.400% and less than or equal to 0.661%. In even further cases, the MS-51 has a total weight percent of greater than or equal to 2.307% and less than or equal to 2.959% and the MTMS has a total weight percent of greater than or equal to 0.400% and less than or equal to 0.532%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 53.73% and methanol at a weight percent of greater than or equal to 46.27% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 63.53% and less than or equal to 67.59%
- water at a weight percent of greater than or equal to 32.43% and less than or equal to 36.42%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.4016% and less than or equal to 0.76% and methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.54%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.817% and less than or equal to 3.922%, MTMS at a total weight percent of greater than or equal to 0.400% and less than or equal to 0.661%, methanol at a total weight percent of greater than or equal to 93.478% and less than or equal to 95.822%, water at a total weight percent of greater than or equal to 1.936% and less than or equal to 1.957% and ammonium hydroxide at a total weight percent of about 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 44.63% and methanol at a weight percent of greater than or equal to 55.37% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 65.31% and less than or equal to 67.59%
- water at a weight percent of greater than or equal to 32.43% and less than or equal to 34.64%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.4016% and less than or equal to 0.61% and methanol at a weight percent of greater than or equal to 99.39% and less than or
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.817% and less than or equal to 2.959%, MTMS at a total weight percent of greater than or equal to 0.400% and less than or equal to 0.532%, methanol at a total weight percent of greater than or equal to 94.56% and less than or equal to 95.822%, water at a total weight percent of greater than or equal to 1.946% and less than or equal to 1.957% and ammonium hydroxide at a total weight percent of about 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 30.84% and less than or equal to 36.84% and methanol at a weight percent of greater than or equal to 63.16% and less than or equal to 69.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 66.92% and less than or equal to 67.59%
- water at a weight percent of greater than or equal to 32.43% and less than or equal to 33.03%
- ammonium hydroxide at a weight percent of about 0.04%
- the third solution comprises MTMS at a weight percent of about 0.4016% and methanol at a weight percent of about 99.54%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.817% and less than or equal to 2.307%, MTMS at atotal weight percent of greater than or equal to 0.400% and less than or equal to 0.401%, methanol at a total weight percent of greater than or equal to 95.339% and less than or equal to 95.822%, water at a total weight percent of greater than or equal to 1.951 % and less than or equal to 1.957% and ammonium hydroxide at atotal weight percent of about 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises MS- 51 at a weight percent of greater than or equal to 36.84% and less than or equal to 53.73% and methanol at a weight percent of greater than or equal to 46.27% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 63.53% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 33.03% and less than or equal to 36.42%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.4016% and less than or equal to 0.76% and methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.54%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.307% and less than or equal to 3.922%, MTMS at a total weight percent of greater than or equal to 0.400% and less than or equal to 0.661%, methanol at a total weight percent of greater than or equal to 93.478% and less than or equal to 95.339%, water at a total weight percent of greater than or equal to 1.936% and less than or equal to 1.951% and ammonium hydroxide at a total weight percent of about 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 36.84% and less than or equal to 44.63% and methanol at a weight percent of greater than or equal to 55.37% and less than or equal to 63.16%
- the second solution comprises methanol at a weight percent of greater than or equal to 65.31% and less than or equal to 66.92%
- water at a weight percent of greater than or equal to 33.03% and less than or equal to 34.64%
- ammonium hydroxide at a weight percent of greater than or equal to 0.04% and less than or equal to 0.05%
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.4016% and less than or equal to 0.61% and methanol at a weight percent of greater than or equal to 99.39% and less than or equal to 99.54%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.307% and less than or equal to 2.959%, MTMS at a total weight percent of greater than or equal to 0.400% and less than or equal to 0.532%, methanol at a total weight percent of greater than or equal to 94.560% and less than or equal to 95.339%, water at a total weight percent of greater than or equal to 1.946 and less than or equal to 1.951% and ammonium hydroxide at a total weight percent of about 0.003%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- step 305 comprises prepanng a first solution by mixing TMOS and methanol
- step 310 comprises preparing a second solution by mixing methanol, ammonium hydroxide and water
- step 330 comprises preparing a third solution by mixing an organo-silane and methanol.
- the organo-silane can be MTMS in some embodiments.
- the MTMS is provided in a controlled amount to provide a molar ratio of the TMOS:MTMS of greater than or equal to 3.7: 1 and less than or equal to 9.2: 1.
- the molar ratio is greater than or equal to 3.7: 1 and less than or equal to 6.9: 1, such as greater than or equal to 3.7: 1 and less than or equal to 4.6:1.
- the molar ratio is greater than or equal to 4.6: 1 and less than or equal to 9.2:1, such as greater than or equal to 4.6: 1 and less than or equal to 6.9: 1.
- the TMOS has a total weight percent of greater than or equal to 2.308% and less than or equal to 5.643% and the MTMS has a total weight percent of greater than or equal to 0.523% and less than or equal to 0.535%. In certain cases, the TMOS has a total weight percent of greater than or equal to 2.308% and less than or equal to 4.27% and the MTMS has a total weight percent of greater than or equal to 0.528% and less than or equal to 0.535%.
- the TMOS has a total weight percent of greater than or equal to 2.308% and less than or equal to 2.875% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.535%.
- the TMOS has a total weight percent of greater than or equal to 2.875% and less than or equal to 5.643% and the MTMS has a total weight percent of greater than or equal to 0.523% and less than or equal to 0.533%.
- the TMOS has a total weight percent of greater than or equal to 2.875% and less than or equal to 4.27% and the MTMS has a total weight percent of greater than or equal to 0.528% and less than or equal to 0.533%.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 67.87% and methanol at a weight percent of greater than or equal to 32.13% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 49.4% and less than or equal to 65.66%
- water at a weight percent of greater than or equal to 33.98% and less than or equal to 50.
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.308% and less than or equal to 5.643%, MTMS at a total weight percent of greater than or equal to 0.523% and less than or equal to 0.535%, methanol at a total weight percent of greater than or equal to 91.097% and less than or equal to 95.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 55.11% and methanol at a weight percent of greater than or equal to 44.89% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 64.28% and less than or equal to 65.66%
- water at a weight percent of greater than or equal to 33.98% and less than or equal to 35.35%
- ammonium hydroxide at a weight percent of greater than or equal to 0.36% and less than or equal to 0.37%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.308% and less than or equal to 4.27%, MTMS at a total weight percent of greater than or equal to 0.528% and less than or equal to 0.535%, methanol at a total weight percent of greater than or equal to 93.269% and less than or equal to 95.197%, water at a total weight percent of greater than or equal to 1.913% and less than or equal to 1.94% and ammonium hydroxide at a total weight percent of about 0.020%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 44.25% and methanol at a weight percent of greater than or equal to 55.75% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 64.99% and less than or equal to 65.66%
- water at a weight percent of greater than or equal to 33.98% and less than 34.65%
- ammonium hydroxide at a weight percent of about 0.36%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.308% and less than or equal to 2.875%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.535%, methanol at a total weight percent of greater than or equal to 94.639% and less than or equal to 95. 197%, water at a total weight percent of greater than or equal to 1.933% and less than or equal to 1.94% and ammonium hydroxide at a total weight percent of about 0.020%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 44.25% and less than or equal to 67.87% and methanol at a weight percent of greater than or equal to 32. 13% and less than or equal to 55.75%
- the second solution comprises methanol at a weight percent of greater than or equal to 49.4% and less than or equal to 64.99%
- water at a weight percent of greater than or equal to 34.65% and less than or equal to 50.
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.875% and less than or equal to 5.643%, MTMS at a total weight percent of greater than or equal to 0.523% and less than or equal to 0.533%, methanol at a total weight percent of greater than or equal to 91.097% and less than or equal to 94.639%, water at a total weight percent of greater than or equal to 1.933% and less than or equal to 2.712% and ammonium hydroxide at a total weight percent of greater than or equal to 0.020% and less than or equal to 0.025%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 44.25% and less than or equal to 55. 11% and methanol at a weight percent of greater than or equal to 44.89% and less than or equal to 55.75%
- the second solution comprises methanol at a weight percent of greater than or equal to 64.28% and less than or equal to 64.99%
- water at a weight percent of greater than or equal to 34.65% and less than or equal to 35.35%
- ammonium hydroxide at a weight percent of greater than or equal to 0.36% and less than or equal to 0.37%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.875% and less than or equal to 4.27%, MTMS at a total weight percent of greater than or equal to 0.528% and less than or equal to 0.533%, methanol at a total weight percent of greater than or equal to 93.269% and less than or equal to 94.639%, water at a total weight percent of greater than or equal to 1.913% and less than or equal to 1.933% and ammonium hydroxide at a total weight percent of about 0.020%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- the MTMS is provided in a controlled amount to provide a molar ratio of the TMOS:MTMS of greater than or equal to 3.86:1 and less than or equal to 6.11 : 1.
- the molar ratio is greater than or equal to 3.86: 1 and less than or equal to 5.79: 1, such as greater than or equal to 3.86:1 and less than or equal to 4.83: 1.
- the molar ratio is greater than or equal to 4.83 : 1 and less than or equal to 6. 11 : 1 , such as greater than or equal to 4.83: 1 and less than or equal to 5.79: 1.
- the TMOS has a total weight percent of greater than or equal to 2.308% and less than or equal to 5.427% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.795%. In certain cases, the TMOS has a total weight percent of greater than or equal to 2.308% and less than or equal to 4.293% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.663%.
- the TMOS has a total weight percent of greater than or equal to 2.308% and less than or equal to 2.875% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.535%. In further cases, the TMOS has a total weight percent of greater than or equal to 2.875% and less than or equal to 5.427% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.795%. In even further cases, the TMOS has a total weight percent of greater than or equal to 2.875% and less than or equal to 4.293% and the MTMS has a total weight percent of greater than or equal to 0.533% and less than or equal to 0.663%.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 68.39% and methanol at a weight percent of greater than or equal to 31.61% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 56.38% and less than or equal to 65.65%
- water at a weight percent of greater than or equal to 34.25% and less than or equal to 43.48%
- ammonium hydroxide at a weight percent of greater than or equal to 0.11 % and less than or equal to 0.
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.61% and less than or equal to 0.91% and methanol at a weight percent of greater than or equal to 99.09% and less than or equal to 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.308% and less than or equal to 5.427%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.795%, methanol at a total weight percent of greater than or equal to 91.838% and less than or equal to 95.196%, water at a total weight percent of greater than or equal to 1.934% and less than or equal to 1.955% and ammonium hydroxide at a total weight percent of about 0.006%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 58.38% and methanol at a weight percent of greater than or equal to 41.66% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 61.15% and less than or equal to 65.65%
- water at a weight percent of greater than or equal to 34.25% and less than or equal to 38.73%
- ammonium hydroxide at a weight percent of greater than or equal to 0.11 % and less than or equal to 0.
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.61% and less than or equal to 0.76% and methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.308% and less than or equal to 4.293%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.663%, methanol at a total weight percent of greater than or equal to 93. 1% and less than or equal to 95.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 38.13% and less than or equal to 44.25% and methanol at a weight percent of greater than or equal to 55.75% and less than or equal to 61.87%
- the second solution comprises methanol at a weight percent of greater than or equal to 64.97% and less than or equal to 65.65%
- water at a weight percent of greater than or equal to 34.25% and less than or equal to 34.92%
- ammonium hydroxide at a weight percent of about 0.11%
- the third solution comprises MTMS at a weight percent of about 0.61% and methanol at a weight percent of about 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.308% and less than or equal to 2.875%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.535%, methanol at a total weight percent of greater than or equal to 94.638% and less than or equal to 95. 196%, water at a total weight percent of greater than or equal to 1.948 and less than or equal to 1.955% and ammonium hydroxide at a total weight percent of about 0.006%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 44.25% and less than or equal to 68.39% and methanol at a weight percent of greater than or equal to 31.61% and less than or equal to 55.75%
- the second solution comprises methanol at a weight percent of greater than or equal to 56.38% and less than or equal to 64.97%
- water at a weight percent of greater than or equal to 34.92% and less than or equal to 43.48%
- ammonium hydroxide at a weight percent of greater than or equal to 0.
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.61% and less than or equal to 0.91% and methanol at a weight percent of greater than or equal to 99.09% and less than or equal to 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.875% and less than or equal to 5.427%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.795%, methanol at a total weight percent of greater than or equal to 91.838% and less than or equal to 94.638%, water at a total weight percent of greater than or equal to 1.934% and less than or equal to 1.948% and ammonium hydroxide at a total weight percent of about 0.006%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 44.25% and less than or equal to 58.38% and methanol at a weight percent of greater than or equal to 41.66% and less than or equal to 55.75%
- the second solution comprises methanol at a weight percent of greater than or equal to 61.15% and less than or equal to 64.97%
- water at a weight percent of greater than or equal to 34.92% and less than or equal to 38.73%
- ammonium hydroxide at a weight percent of greater than or equal to 0.11 % and less than or equal to 0.
- the third solution comprises MTMS at a weight percent of greater than or equal to 0.61% and less than or equal to 0.76% and methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.39%.
- the resulting hydrophobic silica wet gel obtained by the method 300A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.875% and less than or equal to 4.293%, MTMS at a total weight percent of greater than or equal to 0.533% and less than or equal to 0.663%, methanol at a total weight percent of greater than or equal to 93.1% and less than or equal to 94.638%, water at a total weight percent of greater than or equal to 1.938% and less than or equal to 1.948% and ammonium hydroxide at a total weight percent of about 0.006%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- the step 235 of adding the third solution to the silica wet gel occurs before aging is complete.
- the step 335 of adding the third solution to the silica wet gel occurs after aging is complete.
- the aging step includes keeping the silica wet gel (or hydrophobic silica wet gel) in an airtight environment for a selected period of time. Applicant has found that the aging process allows structural transformations to occur in the three-dimensional polymer structure of the silica wet gel (or hydrophobic silica wet gel) that enhance the mechanical strength of the structure.
- One exemplary significant structural transformation that takes place during aging is a decrease in spherical silica particle diameter.
- Pore size is a size of pore spaces between spherical silica particles. Pore sizes are often recorded in terms of average pore size.
- Another exemplary structural transformation is a strengthening of the necking point between two spherical silica particles. The necking point is the point where two adjacent spherical silica particles adjoin.
- FIG. 5 illustrates a method 400 A according to certain embodiments.
- the method includes a step 405 of preparing a first solution by mixing a first alkoxysilane and solvent, a step 410 of preparing a second solution by mixing solvent, catalyst and water, a step 415 of mixing the first solution and the second solution together to form a mixed solution, a step 420 of allowing components in the mixed solution to react to form silica wet gel, a step 425 of aging the silica wet gel for a period of time, a step 430 of preparing a third solution by mixing catalyst and solvent, a step 435 of preparing a fourth solution by mixing a second alkoxy silane and diluent, a step 440 of preparing a solvent exchange solution by mixing the third solution, the fourth solution and solvent, and a step 445 of subjecting the silica wet gel to the solvent extraction solution to form hydrophobic silica wet gel.
- the solvent exchange solution serves as a hydrophobic agent.
- step 405 comprises preparing the first solution by mixing a first alkoxysilane and methanol
- step 410 comprises preparing a second solution by mixing methanol, ammonium hydroxide and water
- step 430 comprises preparing a third solution by mixing ammonium hydroxide and methanol
- step 435 comprises preparing a fourth solution by mixing a second alkoxysilane and methanol
- step 440 comprises preparing a solvent exchange solution by mixing the third solution, the fourth solution and methanol.
- hydrophobic treatment through the solvent exchange solution is performed after the silica wet gel aging is complete.
- the first alkoxy silane is MS-51 and the second alkoxysilane is MTMS.
- the MTMS is provided in a controlled amount to provide a molar ratio of the MS-51 :MTMS of greater than or equal to 1 : 1 and less than or equal to 1.43: 1.
- the molar ratio is greater than or equal to 1: 1 and less than or equal to 1.29 : 1 , such as greater than or equal to 0.95 : 1 and less than or equal to 1.25 : 1.
- the molar ratio is greater than or equal to 1.25:1 and less than or equal to 1.43: 1, such as greater than or equal to 1.25: 1 and less than or equal to 1.29:1.
- the MS-51 has a total weight percent of greater than or equal to 1.811% and less than or equal to 3.909% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.791%. In certain cases, the MS-51 has a total weight percent of greater than or equal to 1.811% and less than or equal to 2.949% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.663%.
- the MS-51 has a total weight percent of greater than or equal to 1.811% and less than or equal to 2.302% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.533%. In further cases, the MS-51 has a total weight percent of greater than or equal to 2.302% and less than or equal to 3.909% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.791%. In even further cases, the MS-51 has a total weight percent of greater than or equal to 2.302% and less than or equal to 2.949%, and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.663%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 18.23% and less than or equal to 36.74% and methanol at a weight percent of greater than or equal to 63.26% and less than or equal to 81.77%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 15.24% and less than or equal to 31.1%, methanol at a weight percent of greater than or equal to 53.54% and less than or equal to 68.33%, water at a weight percent of greater than or equal to 15.35% and less than or equal to 16.41% and ammonium hydroxide at a weight percent of greater than or equal to 0.02% and less than or equal to 0.022%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of greater than or equal to 19.54% and less than or equal to 26.7% and methanol at a weight percent of greater than or equal to 73.3% and less than or equal to 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of greater than or equal to 0.6% and less than or equal to 0.9%, methanol at a weight percent of greater than or equal to 99.09% and less than or equal to 99.39% and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.811% and less than or equal to 3.909%, MTMS at a total weight percent of greater than or equal to 0.532% and less than or equal to 0.791%, methanol at a total weight percent of greater than or equal to 93.36% and less than or equal to 95.695%, water at a total weight percent of greater than or equal to 1.93% and less than or equal to 1.951% and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 18.23% and less than or equal to 28.73% and methanol at a weight percent of greater than or equal to 71.27% and less than or equal to 81.77%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 15.24% and less than or equal to 24.15%, methanol at a weight percent of greater than or equal to 59.93% and less than or equal to 68.33%, water at a weight percent of greater than or equal to 15.9% and less than or equal to 16.41% and ammonium hydroxide at a weight percent of greater than or equal to 0.02% and less than or equal to 0.022%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of greater than or equal to 19.54% and less than or equal to 23.28% and methanol at a weight percent of greater than or equal to 76.72% and less than or equal to 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of greater than or equal to 0.6% and less than or equal to 0.76%, methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.39% and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.811% and less than or equal to 2.949%, MTMS at a total weight percent of greater than or equal to 0.52% and less than or equal to 0.663%, methanol at a total weight percent of greater than or equal to 94.438% and less than or equal to 95.695%, water at a total weight percent of greater than or equal to 1.94% and less than or equal to 1.951% and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 18.23% and less than or equal to 22.83% and methanol at a weight percent of greater than or equal to 77.17% and less than or equal to 81.77%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 15.24% and less than or equal to 19.13%, methanol at a weight percent of greater than or equal to 64.66% and less than or equal to 68.33%, water at a weight percent of greater than or equal to 16.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of about 19.54% and methanol at a weight percent of about 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of about 0.6%, methanol at a weight percent of about 99.39% and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.811% and less than or equal to 2.302%, MTMS at a total weight percent of about 0.532%, methanol at a total weight percent of greater than or equal to 95.209% and less than or equal to 95.695%, water at a total weight percent of about greater than or equal to 1.947% and less than or equal to 1.951% and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 22.83% and less than or equal to 36.74% and methanol at a weight percent of greater than or equal to 63.26% and less than or equal to 77.17%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 19.13% and less than or equal to 31.1%, methanol at a weight percent of greater than or equal to 53.54% and less than or equal to 64.66%, water at a weight percent of greater than or equal to 15.35% and less than or equal to 16.19% and ammonium hydroxide at a weight percent of greater than or equal to 0.02% and less than or equal to 0.022%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of greater than or equal to 19.54% and less than or equal to 26.7% and methanol at a weight percent of greater than or equal to 73.3% and less than or equal to 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of greater than or equal to 0.6% and less than or equal to 0.9%, methanol at a weight percent of greater than or equal to 99.09% and less than or equal to 99.39% and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.302% and less than or equal to 3.909%, MTMS at a total weight percent of greater than or equal to 0.532% and less than or equal to 0.791%, methanol at a total weight percent of greater than or equal to 93.36% and less than or equal to 95.209%, water at a total weight percent of greater than or equal to 1.93% and less than or equal to 1.947% and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 22.83% and less than or equal to 28.73% and methanol at a weight percent of greater than or equal to 71.27% and less than or equal to 77.17%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 19.13% and less than or equal to 24.15%, methanol at a weight percent of greater than or equal to 59.93% and less than or equal to 64.66%, water at a weight percent of greater than or equal to 15.9% and less than or equal to 16. 19% and ammonium hydroxide at a weight percent of greater than or equal to 0.02% and less than or equal to 0.022%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of greater than or equal to 19.54% and less than or equal to 23.28% and methanol at a weight percent of greater than or equal to 76.72% and less than or equal to 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of greater than or equal to 0.6% and less than or equal to 0.76%, methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.39% and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.302% and less than or equal to 2.949%, MTMS at a total weight percent of greater than or equal to 0.532% and less than or equal to 0.663%, methanol at a total weight percent of greater than or equal to 94.438% and less than or equal to 95.209%, water at a total weight percent of greater than or equal to 1.94% and less than or equal to 1.947% and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc. Additional Embodiments of Method 400A
- the first alkoxy silane is MS-51 and MTES is used as the second alkoxysilane.
- the MTES is provided in a controlled amount to provide a molar ratio of the MS -51 : MTES of greater than or equal to 1 : 1.82 and less than or equal to 1: 1.
- the molar ratio is greater than or equal to 1:1.82 and less than or equal to 1 : 1.22, such as greater than or equal to 1 : 1.82 and less than or equal to 1 : 1.43.
- the molar ratio is greater than or equal to 1 : 1.43 and less than or equal to 1: 1, such as greater than or equal to 1: 1.43 and less than or equal to 1: 1.22.
- the MS-51 has a total weight percent of greater than or equal to 1.798% and less than or equal to 3.882% and the MTES has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.472%. In certain cases, the MS-51 has a total weight percent of greater than or equal to 1.798% and less than or equal to 2.928% and the MTES has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.357%. In yet other cases, the MS-51 has a total weight percent of greater than or equal to 1.798% and less than or equal to 2.285% and the MTES has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.24%.
- the MS-51 has a total weight percent of greater than or equal to 2.285% and less than or equal to 3.882% and the MTES has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.472%. In even further cases, the MS-51 has a total weight percent of greater than or equal to 2.285% and less than or equal to 2.928% and the MTMS has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.357%.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 18.23% and less than or equal to 36.74% and methanol at a weight percent of greater than or equal to 63.26% and less than or equal to 81.77%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 15.24% and less than or equal to 31.1%, methanol at a weight percent of greater than or equal to 53.54% and less than or equal to 68.33%, water at a weight percent of greater than or equal to 15.35% and less than or equal to 16.41% and ammonium hydroxide at a weight percent of greater than or equal to 0.02% and less than or equal to 0.022%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of greater than or equal to 36.26% and less than or equal to 40.57% and methanol at a weight percent of greater than or equal to 59.43% and less than or equal to 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of greater than or equal to 1.41% and less than or equal to 1.68%, methanol at a weight percent of greater than or equal to 98.31% and less than or equal to 98.59% and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.798% and less than or equal to 3.882%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.472%, methanol at a total weight percent of greater than or equal to 92.719% and less than or equal to 95.014%, water at a total weight percent of greater than or equal to 1.917% and less than or equal to 1.938% and ammonium hydroxide at atotal weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 18.23% and less than or equal to 28.73% and methanol at a weight percent of greater than or equal to 71.27% and less than or equal to 81.77%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 15.24% and less than or equal to 24.15%, methanol at a weight percent of greater than or equal to 59.93% and less than or equal to 68.33%, water at a weight percent of greater than or equal to 15.9% and less than or equal to 16.41% and ammonium hydroxide at a weight percent of greater than or equal to 0.02% and less than or equal to 0.022%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of greater than or equal to 36.26% and less than or equal to 38.49% and methanol at a weight percent of greater than or equal to 61.51% and less than or equal to 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of greater than or equal to 1.41% and less than or equal to 1.54%, methanol at a weight percent of greater than or equal to 98.45% and less than or equal to 98.59% and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 1.798% and less than or equal to 2.928%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.357%, methanol at a total weight percent of greater than or equal to 93.777% and less than or equal to 95.014%, water at a total weight percent of greater than or equal to 1.928% and less than or equal to 1.938%, and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 18.23% and less than or equal to 22.83% and methanol at a weight percent of greater than or equal to 77.17% and less than or equal to 81.77%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 15.24% and less than or equal to 19.13%, methanol at a weight percent of greater than or equal to 64.66% and less than or equal to 68.33%, water at a weight percent of greater than or equal to 16.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of about 36.26% and methanol at a weight percent of about 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of about 1.41%, methanol at a weight percent of about 98.59% and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at atotal weight percent of greater than or equal to 1.798% and less than or equal to 2.285%, MTES at atotal weight percent of greater than or equal to 1.238% and less than or equal to 1.24%, methanol at a total weight percent of greater than or equal to 94.533% and less than or equal to 95.014%, water at a total weight percent of greater than or equal to 1.934% and less than or equal to 1.938%, and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 22.83% and less than or equal to 36.74% and methanol at a weight percent of greater than or equal to 63.26% and less than or equal to 77.17%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 19.13% and less than or equal to 31.1%, methanol at a weight percent of greater than or equal to 53.54% and less than or equal to 64.66%, water at a weight percent of greater than or equal to 15.35% and less than or equal to 16.19%, and ammonium hydroxide at a weight percent of greater than or equal to 0.02% and less than or equal to 0.022%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of greater than or equal to 36.26% and less than or equal to 40.57% and methanol at a weight percent of greater than or equal to 59.43% and less than or equal to 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of greater than or equal to 1.41% and less than or equal to 1.68%, methanol at a weight percent of greater than or equal to 98.31% and less than or equal to 98.59%, and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.285% and less than or equal to 3.882%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.472%, methanol at a total weight percent of greater than or equal to 92.719% and less than or equal to 94.533%, water at a total weight percent of greater than or equal to 1.917% and less than or equal to 1.934%, and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises MS-51 at a weight percent of greater than or equal to 22.83% and less than or equal to 28.73% and methanol at a weight percent of greater than or equal to 71.27% and less than or equal to 77.17%
- the second solution comprises water at a weight percent of about 99.86% and ammonium hydroxide at a weight percent of about 0. 14%.
- the first solution and the second solution therefore form a mixed solution that comprises MS-51 at a weight percent of greater than or equal to 19.13% and less than or equal to 24.15%, methanol at a weight percent of greater than or equal to 59.93% and less than or equal to 64.66%, water at a weight percent of greater than or equal to 15.9% and less than or equal to 16. 19% and ammonium hydroxide at a weight percent of greater than or equal to 0.02% and less than or equal to 0.022%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of greater than or equal to 36.26% and less than or equal to 38.49% and methanol at a weight percent of greater than or equal to 61.51% and less than or equal to 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of greater than or equal to 1.41% and less than or equal to 1.54%, methanol at a weight percent of greater than or equal to 98.45% and less than or equal to 98.59%, and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from MS-51 at a total weight percent of greater than or equal to 2.285% and less than or equal to 2.928%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.357%, methanol at a total weight percent of greater than or equal to 93.777% and less than or equal to 94.533%, water at a total weight percent of greater than or equal to 1.928% and less than or equal to 1.934% and ammonium hydroxide at a total weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- TMOS is used as the first alkoxy silane and the second alkoxysilane is MTMS.
- the MTMS is provided in a controlled amount to provide a molar ratio of the TMOS:MTMS of greater than or equal to 3.86: 1 and less than or equal to 6. 11 : 1.
- the molar ratio is greater than or equal to 3.86: 1 and less than or equal to 5.79: 1, such as greater than or equal to 3.86: 1 and less than or equal to 4.83: 1.
- the molar ratio is greater than or equal to 4.83: 1 and less than or equal to 6. 11 : 1, such as greater than or equal to 4.83:1 and less than or equal to 5.79: 1.
- the TMOS has a total weight percent of greater than or equal to 2.304% and less than or equal to 5.416% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.793%. In certain cases, the TMOS has a total weight percent of greater than or equal to 2.304% and less than or equal to 4.284% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.662%.
- the TMOS has a total weight percent of greater than or equal to 2.304% and less than or equal to 2.869% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.534%.
- the TMOS has a total weight percent of greater than or equal to 2.869% and less than or equal to 5.416% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.793%.
- the TMOS has a total weight percent of greater than or equal to 2.869% and less than or equal to 4.284% and the MTMS has a total weight percent of greater than or equal to 0.532% and less than or equal to 0.662%.
- the first solution comprises TMOS at a weight percent of greater than or equal to 23.55% and less than or equal to 51.96% and methanol at a weight percent of greater than or equal to 48.04% and less than or equal to 76.45%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 43.82%, methanol at a weight percent of greater than or equal to 40.51% and less than or equal to 63.7%, water at a weight percent of greater than or equal to 15.62% and less than or equal to 16.62%, and ammonium hydroxide at a weight percent of about 0.05%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of greater than or equal to 19.54% and less than or equal to 26.7% and methanol at a weight percent of greater than or equal to 73.3% and less than or equal to 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of greater than or equal to 0.6% and less than or equal to 0.9%, methanol at a weight percent of greater than or equal to 99.09% and less than or equal to 99.39%, and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.304% and less than or equal to 5.416%, MTMS at a total weight percent of greater than or equal to 0.532% and less than or equal to 0.793%, methanol at a total weight percent of greater than or equal to 91.847% and less than or equal to 95.198%, water at atotal weight percent of greater than or equal to 1.930% and less than or equal to 1.95%, and ammonium hydroxide at a total weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 23.55% and less than or equal to 41.23% and methanol at a weight percent of greater than or equal to 58.77% and less than or equal to 76.45%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 34.74%, methanol at a weight percent of greater than or equal to 49.52% and less than or equal to 63.7%, water at a weight percent of greater than or equal to 15.69% and less than or equal to 16.62%, and ammonium hydroxide at a weight percent of about 0.05%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of greater than or equal to 19.54% and less than or equal to 23.28% and methanol at a weight percent of greater than or equal to 76.72% and less than or equal to 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of greater than or equal to 0.6% and less than or equal to 0.76%, methanol at a weight percent of greater than or equal to 99.23% and less than or equal to 99.39%, and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.304% and less than or equal to 4.284%, MTMS at a total weight percent of greater than or equal to 0.532% and less than or equal to 0.662%, methanol at a total weight percent of greater than or equal to 93.106% and less than or equal to 95.198%, water at a total weight percent of greater than or equal to 1.934% and less than or equal to 1.95%, and ammonium hydroxide at a total weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 23.55% and less than or equal to 28.41% and methanol at a weight percent of greater than or equal to 71.59% and less than or equal to 76.45%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 23.81%, methanol at a weight percent of greater than or equal to 6% and less than or equal to 63.7%, water at a weight percent of greater than or equal to 16.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of about 19.54% and methanol at a weight percent of about 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of about 0.6%, methanol at a weight percent of about 99.39%, and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.304% and less than or equal to 2.869%, MTMS at a total weight percent of greater than or equal to 0.532% and less than or equal to 0.534%, methanol at a total weight percent of greater than or equal to 94.642% and less than or equal to 95.198%, water at a total weight percent of greater than or equal to 1.943% and less than or equal to 1.95%, and ammonium hydroxide at atotal weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 28.41% and less than or equal to 51.96% and methanol at a weight percent of greater than or equal to 48.04% and less than or equal to 71.59%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 23.81% and less than or equal to 43.82%, methanol at a weight percent of greater than or equal to 40.51 % and less than or equal to 60%, water at a weight percent of greater than or equal to 15.62% and less than or equal to 16.13%, and ammonium hydroxide at a weight percent of about 0.05%.
- TMOS at a weight percent of greater than or equal to 23.81% and less than or equal to 43.82%
- methanol at a weight percent of greater than or equal to 40.51 % and less than or equal to 60%
- water at a weight percent of greater than or equal to 15.62% and less than or equal to 16.13%
- ammonium hydroxide at a weight percent of about 0.05%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of greater than or equal to 19.54% and less than or equal to 26.7% and methanol at a weight percent of greater than or equal to 73.3% and less than or equal to 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of greater than or equal to 0.6% and less than or equal to 0.9%, methanol at a weight percent of greater than or equal to 99.09% and less than or equal to 99.39%, and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.869% and less than or equal to 5.416%, MTMS at a total weight percent of greater than or equal to 0.532% and less than or equal to 0.793%, methanol at a total weight percent of greater than or equal to 91.847% and less than or equal to 94.642%, water at atotal weight percent of greater than or equal to 1.930% and less than or equal to 1.943%, and ammonium hydroxide at a total weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 28.41% and less than or equal to 41.23% and methanol at a weight percent of greater than or equal to 58.77% and less than or equal to 71.59%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 23.81% and less than or equal to 34.74%, methanol at a weight percent of greater than or equal to 49.52% and less than or equal to 60%, water at a weight percent of greater than or equal to 15.69% and less than or equal to 16. 13%, and ammonium hydroxide at a weight percent of about 0.05%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTMS at a weight percent of greater than or equal to 19.54% and less than or equal to 23.28% and methanol at a weight percent of greater than or equal to 76.72% and less than or equal to 80.46%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTMS at a weight percent of greater than or equal to 0.6% and less than or equal to 0.76%, methanol at a weight percent of greater than or equal to 99.24% and less than or equal to 99.39%, and ammonium hydroxide at a weight percent of about 0.01%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.869% and less than or equal to 4.284%, MTMS at a total weight percent of greater than or equal to 0.532% and less than or equal to 0.662%, methanol at a total weight percent of greater than or equal to 93.106% and less than or equal to 94.642%, water at atotal weight percent of greater than or equal to 1.934% and less than or equal to 1.943%, and ammonium hydroxide at atotal weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- TMOS is used as the first alkoxysilane and MTES is used as the second alkoxysilane.
- the MTES is provided in a controlled amount to provide a molar ratio of the TMOS:MTES of greater than or equal to 2.16: 1 and less than or equal to 4.3:1.
- the molar ratio is greater than or equal to 2.16: 1 and less than or equal to 3.68: 1, such as greater than or equal to 2. 16: 1 and less than or equal to 2.7 : 1.
- the molar ratio is greater than or equal to 2.7: 1 and less than or equal to 4.3: 1, such as greater than or equal to 2.7: 1 and less than or equal to 3.68: 1.
- the TMOS has a total weight percent of greater than or equal to 2.287% and less than or equal to 5.379% and the MTES has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.476%.
- the TMOS has a total weight percent of greater than or equal to 2.287% and less than or equal to 4.254% and the MTES has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.355%.
- the TMOS has a total weight percent of greater than or equal to 2.287% and less than or equal to 2.849% and the MTMS has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.242%.
- the TMOS has a total weight percent of greater than or equal to 2.849% and less than or equal to 5.379% and the MTES has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.476%.
- the TMOS has a total weight percent of greater than or equal to 2.849% and less than or equal to 4.254% and the MTES has a total weight percent of greater than or equal to 1.238% and less than or equal to 1.355%.
- the first solution comprises TMOS at a weight percent of greater than or equal to 23.55% and less than or equal to 51.96% and methanol at a weight percent of greater than or equal to 48.04% and less than or equal to 76.45%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 43.82%, methanol at a weight percent of greater than or equal to 40.51% and less than or equal to 63.7%, water at a weight percent of greater than or equal to 15.62% and less than or equal to 16.62%, and ammonium hydroxide at a weight percent of greater than or equal to 0.05% and less than or equal to 0.052.
- TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 43.82%
- methanol at a weight percent of greater than or equal to 40.51% and less than or equal to 63.7%
- water at a weight percent of greater than or equal to 15.62% and less than or equal to 16.62%
- ammonium hydroxide at a weight percent of greater than or equal to 0.05% and less than or equal to 0.052.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of greater than or equal to 36.26% and less than or equal to 40.57% and methanol at a weight percent of greater than or equal to 59.43% and less than or equal to 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of greater than or equal to 1.41% and less than or equal to 1.68%, methanol at a weight percent of greater than or equal to 98.31% and less than or equal to 98.59%, and ammonium hydroxide at a weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.287% and less than or equal to 5.379%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.476%, methanol at a total weight percent of greater than or equal to 91.214% and less than or equal to 94.521%, water at a total weight percent of greater than or equal to 1.917% and less than or equal to 1.936%, and ammonium hydroxide at a total weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 23.55% and less than or equal to 41.23% and methanol at a weight percent of greater than or equal to 58.77% and less than or equal to 76.45%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 34.74%, methanol at a weight percent of greater than or equal to 49.52% and less than or equal to 63.7%, water at a weight percent of greater than or equal to 15.68% and less than or equal to 16.62%, and ammonium hydroxide at a weight percent of greater than or equal to 0.05% and less than or equal to 0.052%.
- TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 34.74%
- methanol at a weight percent of greater than or equal to 49.52% and less than or equal to 63.7%
- water at a weight percent of greater than or equal to 15.68% and less than or equal to 16.62%
- ammonium hydroxide at a weight percent of greater than or equal to 0.05% and less than or equal to 0.052%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of greater than or equal to 36.26% and less than or equal to 38.49% and methanol at a weight percent of greater than or equal to 61.51% and less than or equal to 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of greater than or equal to 1.41% and less than or equal to 1.54%, methanol at a weight percent of greater than or equal to 98.45% and less than or equal to 98.59%, and ammonium hydroxide at a weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.287% and less than or equal to 4.254%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.355%, methanol at a total weight percent of greater than or equal to 92.457% and less than or equal to 94.521%, water at a total weight percent of greater than or equal to 1.92% and less than or equal to 1.936%, and ammonium hydroxide at a total weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 150 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 23.55% and less than or equal to 28.71% and methanol at a weight percent of greater than or equal to 71.59% and less than or equal to 76.45%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 23.81%, methanol at a weight percent of greater than or equal to 60.014% and less than or equal to 63.7%, water at a weight percent of greater than or equal to 16. 13% and less than or equal to 16.62%, and ammonium hydroxide at a weight percent of greater than or equal to 0.05% and less than or equal to 0.052%.
- TMOS at a weight percent of greater than or equal to 19.63% and less than or equal to 23.81%
- methanol at a weight percent of greater than or equal to 60.014% and less than or equal to 63.7%
- water at a weight percent of greater than or equal to 16. 13% and less than or equal to 16.62%
- ammonium hydroxide at a weight percent of greater than or equal to 0.05% and less than or equal to 0.052%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of about 36.26% and methanol at a weight percent of about 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of about 1.41%, methanol at a weight percent of about 98.59%, and ammonium hydroxide at a weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.287% and less than or equal to 2.849%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.242%, methanol at a total weight percent of greater than or equal to 93.97% and less than or equal to 94.521%, water at a total weight percent of greater than or equal to 1.929% and less than or equal to 1.936%, and ammonium hydroxide at a total weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 100 mg/cc and less than or equal to 120 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 28.71% and less than or equal to 51.96% and methanol at a weight percent of greater than or equal to 48.04% and less than or equal to 71.59%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 23.81% and less than or equal to 43.82%, methanol at a weight percent of greater than or equal to 40.51% and less than or equal to 60.01%, water at a weight percent of greater than or equal to 15.62% and less than or equal to 16.13%, and ammonium hydroxide at a weight percent of about 0.05%.
- TMOS at a weight percent of greater than or equal to 23.81% and less than or equal to 43.82%
- methanol at a weight percent of greater than or equal to 40.51% and less than or equal to 60.01%
- water at a weight percent of greater than or equal to 15.62% and less than or equal to 16.13%
- ammonium hydroxide at a weight percent of about 0.05%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of greater than or equal to 36.26% and less than or equal to 40.57% and methanol at a weight percent of greater than or equal to 59.43% and less than or equal to 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of greater than or equal to 1.41% and less than or equal to 1.68%, methanol at a weight percent of greater than or equal to 98.31% and less than or equal to 98.59%, and ammonium hydroxide at a weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.849% and less than or equal to 5.379%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.476%, methanol at a total weight percent of greater than or equal to 91.214% and less than or equal to 93.97%, water at a total weight percent of greater than or equal to 1.917% and less than or equal to 1.929%, and ammonium hydroxide at a total weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 200 mg/cc.
- the first solution comprises TMOS at a weight percent of greater than or equal to 28.71% and less than or equal to 41.23% and methanol at a weight percent of greater than or equal to 58.77% and less than or equal to 71.59%
- the second solution comprises water at a weight percent of about 99.69% and ammonium hydroxide at a weight percent of about 0.31%.
- the first solution and the second solution therefore form a mixed solution that comprises TMOS at a weight percent of greater than or equal to 23.81% and less than or equal to 34.74%, methanol at a weight percent of greater than or equal to 49.52% and less than or equal to 60.01%, water at a weight percent of greater than or equal to 15.68% and less than or equal to 16. 13%, and ammonium hydroxide at a weight percent of about 0.05%.
- the third solution comprises ammonium hydroxide at a weight percent of about 3.71% and methanol at a weight percent of about 96.29%
- the fourth solution comprises MTES at a weight percent of greater than or equal to 36.26% and less than or equal to 38.49% and methanol at a weight percent of greater than or equal to 61.51% and less than or equal to 63.74%.
- the third solution and the fourth solution are combined with additional methanol to form the solvent exchange solution, which comprises MTES at a weight percent of greater than or equal to 1.41% and less than or equal to 1.54%, methanol at a weight percent of greater than or equal to 98.45% and less than or equal to 98.59%, and ammonium hydroxide at a weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel obtained by the method 400A is thereby synthesized from TMOS at a total weight percent of greater than or equal to 2.849% and less than or equal to 4.254%, MTES at a total weight percent of greater than or equal to 1.238% and less than or equal to 1.355%, methanol at a total weight percent of greater than or equal to 92.457% and less than or equal to 93.97%, water at a total weight percent of greater than or equal to 1.92% and less than or equal to 1.929%, and ammonium hydroxide at a total weight percent of about 0.014%.
- the resulting hydrophobic silica wet gel also has a density of greater than or equal to 120 mg/cc and less than or equal to 150 mg/cc.
- the selected time period for aging is a time period in which the aging process reaches saturation. Once saturation has occurred, no further structural transformation of the wet gel occurs. Applicant has discovered that optimal properties are obtained when the selected time period is a time period of at least 7 days (168 hours), at least 8 days (192 hours), at least 9 days (216 hours) or at least 10 days (240 hours). Additionally, warping of the hydrophobic silica wet gel often takes place during subsequent processes. For example, in many cases, silica wet gel shrinks during drying. However, Applicant has found that a time period of at least 7 days helps prevent warping such as shrinking.
- FIG. 2 illustrates method 200B according to certain embodiments.
- the method 200B comprises steps 205 through 240 of making hydrophobic silica wet gel as described with regard to method 200A in FIG. 1, in addition to a step 245 of drying the hydrophobic silica wet gel to form hydrophobic silica aerogel.
- FIG. 4 illustrates a method 300B according to certain embodiments.
- the method 300B comprises steps 305 through 340 of making hydrophobic silica wet gel as described with regard to method 300A in FIG. 3, in addition to a step 345 of drying the hydrophobic silica wet gel to form hydrophobic silica aerogel.
- FIG. 6 illustrates a method 400B according to certain embodiments.
- the method 400B comprises steps 405 through 445 of making hydrophobic silica wet gel as described with regard to method 400A in FIG. 5, in addition to a step 450 of drying the hydrophobic silica wet gel to form hydrophobic silica aerogel.
- the drying step results in a hydrophobic silica aerogel having a shrinkage value of 4% or less, for example 3.5% or less, 3% or less, 2.5% or less, 2% or less or 1.75% or less. Also, in some cases, the drying step results in hydrophobic silica aerogel having a visible transmission of at least 97.8% and a haze value of 3% or less, for example a visible transmission of at least 98% and a haze value of 3% or less, a visible transmission of at least 98.6% and a haze value of 2.5 % or less, or a visible transmission of at least 99% and a haze value of 2% or less. Further, in some cases, the drying step results in hydrophobic silica aerogel having a water contact angle of at least 90%, for example at least 100% or at least 110%.
- the hydrophobic silica wet gel is dried using a conventional aerogel drying method.
- the hydrophobic silica wet gel is placed in either a freeze dryer, a supercritical dryer, or an ambient dryer.
- the step 245 of drying the hydrophobic silica wet gel comprises either a freeze-drying process, a supercritical drying process, or an ambient drying process.
- the hydrophobic silica wet gel is dried using a supercritical drying method (also known as a critical point drying method).
- supercritical dry ing involves a solvent exchange. Specifically, the water initially inside the hydrophobic silica wet gel is replaced with a suitable organic solvent (e.g., methanol, ethanol, or acetone).
- a suitable organic solvent e.g., methanol, ethanol, or acetone.
- the hydrophobic silica wet gel is then placed in a pressure vessel along with liquid carbon dioxide.
- the pressure vessel may be filled with, and emptied of, liquid carbon dioxide multiple times, so as to remove the organic solvent and leave liquid carbon dioxide in its place.
- the liquid carbon dioxide is then heated past its critical temperature and pressure and removed, thereby leaving a hydrophobic silica aerogel.
- the hydrophobic silica wet gel can be placed in a methanol solvent bath for 8 hours, removed and then placed in another methanol solvent bath for 8 more hours.
- the total time period in which the hydrophobic silica wet gel is in the solvent bath can be less than 20 hours, such as less than 17 hours. This is desirable as longer solvent processing time can lead to deterioration in optical properties. Additionally, a shorter solvent processing time is advantageous for commercial production.
- the hydrophobic silica wet gel is dried using an ambient drying method.
- ambient drying involves drying the hydrophobic silica wet gel under ambient conditions (e.g., at a temperature in a range of from about 50 degrees to about 85 degrees Fahrenheit, and more typically in a range of from 68 degrees to 72 degrees Fahrenheit).
- the liquid in the hydrophobic silica wet gel is allowed to slowly evaporate under controlled conditions, leaving a hydrophobic silica aerogel.
- the controlled conditions ensure that the evaporation is slow enough so that the silica network of the gel does not collapse during the drying.
- the dryer is configured to establish a controlled environment in its interior. This may involve a controlled temperature, a controlled pressure, a controlled airflow, a controlled humidity, or any combination thereof.
- the hydrophobic silica wet gel is dried using a freeze-drying method.
- the hydrophobic silica wet gel is frozen and then put into a vacuum chamber.
- the solvent is then removed to leave a hydrophobic silica aerogel.
- Any suitable freeze-drying technique known in the art may be used.
- the hydrophobic silica wet gel can be placed into a household freezer, liquid nitrogen, or in a cryogenic mixture (e.g., a dry-ice/solvent mixture, such as a dry-ice and acetone bath).
- the hydrophobic silica aerogel is provided in the form of a hydrophobic silica aerogel sheet. This is in contrast to aerogel in flowable granular or otherwise particulate form.
- the hydrophobic silica aerogel sheet preferably is self-supporting, i.e., once fully synthesized and formed, the sheet can retain sheet form without being adhered to glass or another support. This can optionally be the case for any embodiment of the present disclosure involving a hydrophobic silica aerogel sheet.
- the hydrophobic silica aerogel sheet is an enhanced sheet having an advantageous combination of properties.
- the hydrophobic silica aerogel sheet desirably has low haze.
- the haze can optionally be less than or equal to 4%, such as less than or equal to 3%, e.g., less than or equal to 2.5%, less than or equal to 2%, or less than or equal to 1.75%.
- the hydrophobic silica aerogel sheet has a haze of less than or equal to 1.5%, less than or equal to 1.25%, or even less than or equal to 1%.
- Haze can be measured in well-known fashion, e.g., using a BYK Haze-Gard plus instrument. Reference is made to ASTM D 1003-00: Standard Test method for Haze and Luminous Transmittance of Transparent Plastics, the contents of which are incorporated herein by reference.
- the hydrophobic silica aerogel sheet desirably has high visible transmission.
- the hydrophobic silica aerogel sheet has a visible transmission of at least 97.8%, at least 97.9%, at least 98%, at least 98.1%, at least 98.2%, at least 98.3%, at least 98.4%, at least 98.5%, at least 98.6%, at least 98.7%, at least 98.8%, at least 98.9%, or at least 99%, such as at least 99.1%, at least 99.2%, at least 99.3%, at least 99.4%, or perhaps at least 99.5%.
- visible transmission is well known in the art and is used herein in accordance with its well-known meaning to refer to the percentage of all incident visible radiation that is transmitted through an object (e.g., through the hydrophobic silica aerogel sheet). Visible radiation constitutes the wavelength range of between about 380 nm and about 780 nm. Visible transmission, as well as visible reflection, can be determined in accordance with NFRC 300-2017, Standard Test Method for Determining the Solar and Infrared Optical Properties of Glazing Materials and Fading Resistance of Systems. The well-known and commercially available LBNL WINDOW 7.4 computer program can be used in calculating these and other reported optical properties.
- the hydrophobic silica aerogel sheet can also have desirable transmitted color characterized by “a” and “b” color coordinates that are each between -2 and 2.
- the present discussion of color properties is reported using the well-known color coordinates of “a” and “b.”
- the color coordinates are indicated herein using the subscript h (i.e., ah and bh) to represent the conventional use of the well-known Hunter Lab Color System (Hunter methods/units, Ill. D65, 10 degree observer).
- the present color properties can be calculated as specified in “Insight on Color,” “Hunter L, a, b Color Scale,” Applications Note, Vol. 8, No. 9, 06/08 (2008), the relevant teachings of which are incorporated herein by reference.
- the hydrophobic silica aerogel sheet can have a low bulk density.
- the hydrophobic silica aerogel sheet has a bulk density of 200 mg/cc or less.
- the hydrophobic silica aerogel sheet has a bulk density of 150 mg/cc or less, such as 140 mg/cc or less, 130 mg/cc or less, or 125 mg/cc or less.
- the hydrophobic silica aerogel sheet has a bulk density of at least 70 mg/cc.
- the hydrophobic silica aerogel sheet has a bulk density of at least 80 mg/cc, such as at least 85 mg/cc or at least 95 mg/cc.
- the hy drophobic silica aerogel sheet has a bulk density of between 100 mg/cc and 150 mg/cc, such as between 120 mg/cc and 150 mg/cc. In certain cases, the bulk density is 120 mg/cc.
- the density of the hydrophobic silica aerogel sheet can optionally be in this range for any embodiment of the present disclosure, preferably in combination with visible transmission and haze levels in the ranges noted above (e.g., T vis of at least 97.8%, at least 98%, at least 98.6% or at least 99%, together with a haze of 3% or less, 2% or less, 1.75% or less, or 1.5% or less). Bulk density can be determined by weighing the hydrophobic silica aerogel sheet and then calculating the volume using the dimensions of the hydrophobic silica aerogel sheet.
- the hydrophobic silica aerogel sheet can also have low thermal conductivity.
- the hydrophobic silica aerogel sheet can have a thermal conductivity of 14 mW/m*K or less in air, such as 13.5 mW/m*K or less, 13 mW/m*K or less, 12 mW/m*K or less, or 11.5 mW/m*K or less.
- the hydrophobic silica aerogel sheet can have a thermal conductivity of 10 mW/m*K or less in an inert gas, such as argon.
- the thermal conductivity of the hydrophobic silica aerogel sheet can optionally be in one or more (optionally all) of these ranges for any embodiment of the present disclosure. Thermal conductivity can be determined using a conventional heat flow meter, such as the well-known TA Instruments Fox 200 heat flow meter, which is commercially available from Waters Corporation (New Castle, Delaware, U.S.A.).
- the hydrophobic silica aerogel sheet can have a flexural modulus of 6000 kPa or less, such as 4500 kPa or less, 2400 kPa or less, 2300 kPa or less, 2000 kPa or less, 1900 kPa or less, 1800 kPa or less, 1700 kPa or less, 1600 kPa or less, 1500 kPa or less, 1400 kPa or less, 1300 kPa or less, 1200 kPa or less, 1100 kPa or less, 1000 kPa or less, 900 kPa or less, 800 kPa or less, 750 kPa or less, or even 700 kPa or less.
- a flexural modulus of 6000 kPa or less, such as 4500 kPa or less, 2400 kPa or less, 2300 kPa or less, 2000 kPa or less, 1900 kPa or less, 1800 k
- the hydrophobic silica aerogel sheet can have a flexural modulus of between 700 kPa and 6000 kPa, such as between 750 kPa and 6000 kPa, between 800 kPa and 6000 kPa, between 900 kPa and 6000 kPa, between 1000 kPa and 6000 kPa, between 1100 kPa and 6000 kPa, between 1200 kPa and 6000 kPa, between 1300 kPa and 6000 kPa, between 1400 kPa and 6000 kPa, between 1500 kPa and 6000 kPa, between 1600 kPa and 6000 kPa, between 1700 kPa and 6000 kPa, between 1800 kPa and 6000 kPa, between 1900 kPa and 6000 kPa, between 2000 kPa and 6000 kPa, between 2300 kPa and 6000 kPa,
- the flexural modulus of a material is a mechanical property that measures a material’s stiffness or resistance to bending and is defined as the ratio of stress to strain in flexural deformation. It is determined from the slope of a stress-strain curve produced by a flexural test, such as ASTM D790: Standard Test Methods for Flexural Properties of Unreinforced and Reinforced Plastics and Electrical Insulating Material, the contents of which are incorporated herein by reference.
- ASTM D790 Standard Test Methods for Flexural Properties of Unreinforced and Reinforced Plastics and Electrical Insulating Material
- the hydrophobic silica aerogel sheet can have an average pore size of 31 nm or less, such as 30 nm or less, 29 nm or less, 28 nm or less, 27 nm or less, 26 nm or less, 25 nm or less, 24 nm or less, 23 nm or less, 22 nm or less, 21 nm or less, or even 20 nm or less.
- the average pore size can be determined using a Quantachrome “autosorb-iQ” gas absorption analyzer, which is commercially available from Anton Paar (Graz, Austria) along with calculating average pore size using density functional theory (DFT) calculations.
- DFT density functional theory
- the silica aerogel sheet can also have a specific surface area of at least 750 m 2 /g, such as at least 800 m 2 /g, at least 850 m 2 /g, at least 900 m 2 /g, at least 950 m 2 /g, or at least 1000 m 2 /g.
- any embodiment of the present disclosure that involves the hydrophobic silica aerogel sheet, preferably in combination with an average pore diameter in one or more (optionally all) of the ranges noted in the paragraph above and/or in combination with a density of between 100 mg/cc and 150 mg/cc, optionally in further combination with visible transmission and haze levels in the ranges noted above (e.g., TTM of at least 97.8%, perhaps at least 98%, at least 98.6%, or at least 99%, together with haze of 3% or less, 2% or less, 1.75% or less, or 1.5% or less).
- TTM visible transmission and haze levels
- the specific surface area can also be determined using a Quantachrome “autosorb-iQ” gas absorption analyzer, which is commercially available from Anton Paar (Graz, Austria) along with calculating specific surface area using density functional theory (DFT) calculations.
- DFT density functional theory
- the silica aerogel sheet can have a water contact angle of at least 90°, such as at least 95°, at least 100°, at least 105°, at least 110°, at least 115°, at least 120°, or at least 125°.
- a Rame-Hart Contact Angle Goniometer (Model No.100-00) was used for the detection of static contact angle measurement. The measurement was performed by using a traditional sessile drop technique.
- the silica aerogel sheet can also have a linear shrinkage (X/Y direction) of 4% or less, 3.5% or less, 3% or less, 2.5% or less, 2% or less, 1.75% or less, or perhaps 1.7% or less.
- Sample images were taken with a regular camera with known scale. The images were analyzed with image J software and the final length of the aerogel was determined after CPD drying with respect to the known initial length (Initial length- 120mm).
- Certain embodiments provide a hydrophobic silica aerogel sheet synthesized from at least two alkoxy silanes and having a visible transmission of at least 97.8% and a haze value of 3% or less.
- a first alkoxy silane of the two alkoxy silanes is selected from methyl silicate 51 and tetramethoxy silane, and a second alkoxysilane of the two alkoxysilanes is selected from methyltrimethoxysilane and methyltriethoxysilane.
- the hydrophobic silica aerogel sheet can also include at least one of the following features (A) through (E):
- (E) an average pore diameter of 30 nm or less.
- the hydrophobic silica aerogel sheet can optionally include at least two of the features (A) through (E), at least three of the features (A) through (E), at least four of the features (A) through (E), or all of the features (A) through (E). Also, in some cases, the visible transmission of the hydrophobic silica aerogel sheet is at least 98.6%, and the haze value is 2.5% or less. In further cases, the visible transmission of the hydrophobic silica aerogel sheet is at least 99%, and the haze value is 2% or less.
- the water contact angle in feature (A) can optionally be at least 100°, such as at least 110° or at least 120°.
- the flexural modulus in feature (C) can optionally be 4500 kPa or less. Further, the specific surface area in feature (D) can optionally be at least 800 m 2 /g. Even further, the average pore diameter in feature (E) can optionally be 27 nm or less.
- hydrophobic silica aerogel sheet synthesized from at least two alkoxy silanes and having a visible transmission of at least 98% and a haze value of 2% or less.
- the hydrophobic silica aerogel sheet can also include at least one of the follow ing features (A) through (E):
- (E) an average pore diameter of 29 nm or less.
- the hydrophobic silica aerogel sheet can optionally include at least two of the features (A) through (E), at least three of the features (A) through (E), at least four of the features (A) through (E), or all of the features (A) through (E).
- hydrophobic silica aerogel sheet synthesized from at least two alkoxy silanes and having a visible transmission of at least 98.6% and a haze value of 1.5% or less.
- the hydrophobic silica aerogel sheet can also include at least one of the following features (A) through (E):
- (E) an average pore diameter of 28 nm or less.
- the hydrophobic silica aerogel sheet can optionally include at least two of the features (A) through (E), at least three of the features (A) through (E), at least four of the features (A) through (E) or all of the features (A) through (E).
- Exemplary hydrophobic silica aerogel sheets (Examples #1-#12) were prepared using MS-51 and MTMS at densities of 100 mg/cc, 120 mg/cc, 150 mg/cc, and 200 mg/cc. In these examples, a hydrophobic silica wet gel sheet was formed before a step of aging was completed. Properties obtained for hydrophobic silica aerogel sheets from these examples were measured using methods described herein and are tabulated in Tables 1-3.
- Example #1 was prepared according to the following steps:
- A Preparing a first solution by mixing 5.5 mL MS-51 and 18.5 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 30.84% and methanol at a weight percent of 69.16%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 15.24%, methanol at a weight percent of 68.34%, water at a weight percent of 16.27%, and ammonium hydroxide at a weight percent of 0.15%.
- Example #2 was prepared according to the following steps:
- A Preparing a first solution by mixing 7 mL MS-51 and 18 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 36.84% and methanol at a weight percent of 63.16%.
- B Preparing a second solution by mixing 18 mL methanol, 0.07 mL ammonium hydroxide and 6.93 mL water.
- the weight percent of the second solution included methanol at a weight percent of 66.94%, water at a weight percent of 32.76%, and ammonium hydroxide at a weight percent of 0.3%.
- C Mixing the first solution and second solution together to form a mixed solution.
- the weight percent of the mixed solution included MS-51 at a weight percent of 18.96%, methanol at a weight percent of 64.99%, water at a weight percent of 15.90%, and ammonium hydroxide at a weight percent of 0.15%.
- Example #3 was prepared according to the following steps:
- A Preparing a first solution by mixing 11.5 mL MS-51 and 18 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 48.94% and methanol at a weight percent of 51.06%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 27.76%, methanol at a weight percent of 57.93%, water at a weight percent of 14.18%, and ammonium hydroxide at a weight percent of 0.13%.
- Example #4 was prepared according to the following steps:
- A Preparing a first solution by mixing 15 mL MS-51 and 18 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 55.56% and methanol at a weight percent of 44.44%.
- C. Mixing the first solution and second solution together to form a mixed solution.
- the weight percent of the mixed solution included MS-51 at a weight percent of 31.6%, methanol at a weight percent of 50.56%, water at a weight percent of 17.68%, and ammonium hydroxide at a weight percent of 0.16%.
- D. Depositing the mixed solution into a mold having interior dimensions of 5 inches by 5 inches by 3.5 mm. Sealing the mold to provide an airtight environment.
- Example #5 was prepared according to the following steps:
- A Preparing a first solution by mixing 5.5 mL MS-51 and 18.5 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 30.84% and methanol at a weight percent of 69.16%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 15.24%, methanol at a weight percent of 68.33%, water at a weight percent of 16.41%, and ammonium hydroxide at a weight percent of 0.02%.
- Example #6 was prepared according to the following steps:
- A Preparing a first solution by mixing 7 mL MS-51 and 18 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 36.84% and methanol at a weight percent of 63.16%.
- B Preparing a second solution by mixing 18 mL methanol, 0.01 mL ammonium hydroxide, and 6.989 mL water.
- the weight percent of the second solution included methanol at a weight percent of 66.93%, water at a weight percent of 33.03%, and ammonium hydroxide at a weight percent of 0.04%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 18.96%, methanol at a weight percent of 64.98%, water at a weight percent of 16.04%, and ammonium hydroxide at a weight percent of 0.02%.
- Example #7 was prepared according to the following steps:
- A Preparing a first solution by mixing 9 mL MS-51 and 16.75 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 44.63% and methanol at a weight percent of 55.37%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 24. 15%, methanol at a weight percent of 59.93%, water at a weight percent of 15.9%, and ammonium hydroxide at a weight percent of 0.02%.
- Example #8 was prepared according to the following steps:
- A Preparing a first solution by mixing 12 mL MS-51 and 15.5 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 53.73% and methanol at a weight percent of 46.27%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 31.09%, methanol at a weight percent of 53.54%, water at a weight percent of 15.35%, and ammonium hydroxide at a weight percent of 0.02%.
- a third solution by mixing 3 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS-51 MTMS was 1.43: 1.
- the weight percent of the third solution included MTMS at a weight percent of 15.40% and methanol at a weight percent of 84.6%.
- Example #9 was prepared according to the following steps:
- A Preparing a first solution by mixing 5.5 mL MS-51 and 18.5 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 30.84% and methanol at a weight percent of 69. 16%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 15.24%, methanol at a weight percent of 68.33%, water at a weight percent of 16.41%, and ammonium hydroxide at a weight percent of 0.02%.
- a third solution by mixing 1.5 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS- 5EMTMS was 1.3: 1.
- the weight percent of the third solution included MTMS at a weight percent of 8.35% and methanol at a weight percent of 91.65%.
- Example #10 was prepared according to the following steps:
- A Preparing a first solution by mixing 7 mL MS-51 and 18 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 36.84% and methanol at a weight percent of 63.16%.
- B Preparing a second solution by mixing 18 mL methanol, 0.01 mL ammonium hydroxide, and 6.989 mL water.
- the weight percent of the second solution included methanol at a weight percent of 66.92%, water at a weight percent of 33.03%, and ammonium hydroxide at a weight percent of 0.04%.
- C. Mixing the first solution and second solution together to form a mixed solution.
- the weight percent of the mixed solution included MS-51 at a weight percent of 18.96%, methanol at a weight percent of 64.98%, water at a weight percent of 16.04%, and ammonium hydroxide at a weight percent of 0.02%.
- D. Depositing the mixed solution into a mold having interior dimensions of 5 inches by 5 inches by 3.5 mm. Sealing the mold to provide an airtight environment.
- a third solution by mixing 1.5 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS- 5EMTMS was 1.66:1.
- the weight percent of the third solution included MTMS at a weight percent of 8.35% and methanol at a weight percent of 91.65%.
- Example #11 was prepared according to the following steps:
- A Preparing a first solution by mixing 9 mL MS-51 and 16.75 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 44.63% and methanol at a weight percent of 55.34%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 24. 15%, methanol at a weight percent of 59.93%, water at a weight percent of 15.9%, and ammonium hydroxide at a weight percent of 0.02%.
- Example #12 was prepared according to the following steps:
- A Preparing a first solution by mixing 12 mL MS-51 and 15.5 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 53.73% and methanol at a weight percent of 46.27%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 31.09%, methanol at a weight percent of 53.54%, water at a weight percent of 15.35%, and ammonium hydroxide at a weight percent of 0.02%.
- the weight percent of the third solution included MTMS at a weight percent of 13. 18% and methanol at a weight percent of 86.82%.
- Exemplaty hydrophobic silica aerogel sheets (Examples # 13- 24) were prepared using MS-51 and MTMS at densities of 100 mg/cc, 120 mg/cc, 150 mg/cc, and 200 mg/cc. In these examples, a hydrophobic silica wet gel sheet was formed after aging was completed. Properties obtained for hydrophobic silica aerogel sheets in these examples were also measured using methods described herein and tabulated in Tables 4-6.
- Example #13 was prepared according to the following steps:
- A Preparing a first solution by mixing 5.5 mL MS-51 and 18.5 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 30.84% and methanol at a weight percent of 69.16%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 15.24%, methanol at a weight percent of 68.34%, water at a weight percent of 16.27%, and ammonium hydroxide at a weight percent of 0.15%.
- G Preparing a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS-51 MTMS was 0.95: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #14 was prepared according to the following steps:
- A Preparing a first solution by mixing 7 mL MS-51 and 18 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 36.84% and methanol at a weight percent of 63.16%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 18.95%, methanol at a weight percent of 65%, water at a weight percent of 15.9%, and ammonium hydroxide at a weight percent of 0.15%.
- Example #15 was prepared according to the following steps:
- A Preparing a first solution by mixing 11.5 mL MS-51 and 18 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 48.94% and methanol at a weight percent of 51.06%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 27.76%, methanol at a weight percent of 57.93%, water at a weight percent of 14. 18%, and ammonium hydroxide at a weight percent of 0.13%.
- G Preparing a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS-51 MTMS was 2: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #16 was prepared according to the following steps:
- A Preparing a first solution by mixing 15 mL MS-51 and 18 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 55.56% and methanol at a weight percent of 44.44%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 31.6%, methanol at a weight percent of 50.56%, water at a weight percent of 17.68%, and ammonium hydroxide at a weight percent of 0.16%.
- G Preparing a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS-5LMTMS was 2.55: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- H Adding the third solution to the aged silica wet gel sheet in the mold after aging is complete.
- Example #17 was prepared according to the following steps: A. Preparing a first solution by mixing 5.5 mL MS-51 and 18.5 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 30.84% and methanol at a weight percent of 69.16%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 15.24%, methanol at a weight percent of 68.33%, water at a weight percent of 16.41%, and ammonium hydroxide at a weight percent of 0.02%.
- G Preparing a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS-5LMTMS was 0.98: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Steps J through M were repeated as performed in Example #13. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #17 are shown in Table 5.
- Example #18 was prepared according to the following steps: A. Preparing a first solution by mixing 7 mL MS-51 and 18 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 36.84% and methanol at a weight percent of 63.16%.
- B Preparing a second solution by mixing 18 mL methanol, 0.01 mL ammonium hydroxide, and 6.989 mL water.
- the weight percent of the second solution included methanol at a weight percent of 66.92%, water at a weight percent of 33.04%, and ammonium hydroxide at a weight percent of 0.04%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 18.96%, methanol at a weight percent of 64.98%, water at a weight percent of 16.04%, and ammonium hydroxide at a weight percent of 0.02%.
- G Preparing a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS-5LMTMS was 1.25: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Steps J through M were repeated as performed in Example #13. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #18 are shown in Table 5.
- Example #19 was prepared according to the following steps: A. Preparing a first solution by mixing 9 mL MS-51 and 16.75 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 44.63% and methanol at a weight percent of 55.37%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 24. 15%, methanol at a weight percent of 59.93%, water at a weight percent of 15.9%, and ammonium hydroxide at a weight percent of 0.02%.
- a third solution by mixing 2.5 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS- 5LMTMS was 1.29: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.76% and methanol at a weight percent of 99.24%.
- Steps J through M were repeated as performed in Example #13. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #19 are shown in Table 5.
- Example #20 was prepared according to the following steps: A. Preparing a first solution by mixing 12 mL MS-51 and 15.5 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 53.73% and methanol at a weight percent of 46.27%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 31.09%, methanol at a weight percent of 53.54%, water at a weight percent of 15.35%, and ammonium hydroxide at a weight percent of 0.02%.
- G Preparing a third solution by mixing 3 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS-5LMTMS was 1.43: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.91% and methanol at a weight percent of 99.09%.
- Example #21 was prepared according to the following steps:
- A Preparing a first solution by mixing 5.5 mL MS-51 and 18.5 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 30.84% and methanol at a weight percent of 69. 16%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 15.24%, methanol at a weight percent of 68.33%, water at a weight percent of 16.41%, and ammonium hydroxide at a weight percent of 0.02%.
- a third solution by mixing 1.5 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS- 5EMTMS was 1.31: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.46% and methanol at a weight percent of 99.54%.
- Example #22 was prepared according to the following steps:
- A Preparing a first solution by mixing 7 mL MS-51 and 18 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 36.84% and methanol at a weight percent of 63.16%.
- B Preparing a second solution by mixing 18 mL methanol, 0.01 mL ammonium hydroxide, and 6.989 mL water.
- the weight percent of the second solution included methanol at a weight percent of 66.92%, water at a weight percent of 33.04%, and ammonium hydroxide at a weight percent of 0.04%.
- C. Mixing the first solution and second solution together to form a mixed solution.
- the weight percent of the mixed solution included MS-51 at a weight percent of 18.96%, methanol at a weight percent of 64.98%, water at a weight percent of 16.04%, and ammonium hydroxide at a weight percent of 0.02%.
- D. Depositing the mixed solution into a mold having interior dimensions of 5 inches by 5 inches by 3.5 mm. Sealing the mold to provide an airtight environment.
- a third solution by mixing 1.5 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS- 5EMTMS was 1.67: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.46% and methanol at a weight percent of 99.54%.
- Example #23 was prepared according to the following steps:
- A Preparing a first solution by mixing 9 mL MS-51 and 16.75 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 44.63% and methanol at a weight percent of 55.37%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 24. 15%, methanol at a weight percent of 59.93%, water at a weight percent of 15.9%, and ammonium hydroxide at a weight percent of 0.02%.
- a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS-5EMTMS was 1.61: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #24 was prepared according to the following steps:
- A Preparing a first solution by mixing 12 mL MS-51 and 15.5 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 53.73% and methanol at a weight percent of 46.27%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 31.09%, methanol at a weight percent of 53.54%, water at a weight percent of 15.35%, and ammonium hydroxide at a weight percent of 0.02%.
- a third solution by mixing 2.5 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the MS- 51:MTMS was 1.72: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.76% and methanol at a weight percent of 99.24%.
- Exemplar)' hydrophobic silica aerogel sheets were prepared using TMOS and MTMS at densities of 100 mg/cc, 120 mg/cc, 150 mg/cc, and 200 mg/cc. In these examples, a hydrophobic silica wet gel sheet was formed before aging was completed. Properties obtained for hydrophobic silica aerogel sheets obtained for these examples were also measured using methods described herein and tabulated in Tables 7-8.
- Example #25 was prepared according to the following steps:
- the weight percent of the mixed solution included TMOS at a weight percent of 19.63%, methanol at a weight percent of 63.71%, water at a weight percent of 19.49%, and ammonium hydroxide at a weight percent of 0.17%.
- a third solution by mixing 2 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 3.7: 1.
- the weight percent of the third solution included MTMS at a weight percent of 10.83%, and methanol at a weight percent of 89. 17%.
- Example #26 (TMOS/MTMS at 4,6: 1 ratio at 120 mg/cc)
- Example #26 was prepared according to the following steps:
- A Preparing a first solution by mixing 10 mL TMOS and 16.5 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 44.25% and methanol at a weight percent of 55.75%.
- the weight percent of the mixed solution included TMOS at a weight percent of 23.81%, methanol at a weight percent of 60.02%, water at a weight percent of 16%, and ammonium hydroxide at a weight percent of 0.17%.
- a third solution by mixing 2 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 4.6: 1.
- the weight percent of the third solution included MTMS at a weight percent of 10.83% and methanol at a weight percent of 89. 17%.
- Example #27 was prepared according to the following steps: A. Preparing a first solution by mixing 15 mL TMOS and 16 mL methanol. The weight percent of the first solution included TMOS at a weight percent of 55. 11% and methanol at a weight percent of 44.89%.
- the weight percent of the mixed solution included TMOS at a weight percent of 32.45%, methanol at a weight percent of 52.87%, water at a weight percent of 14.53%, and ammonium hydroxide at a weight percent of 0.15%.
- a third solution by mixing 2 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 6.9: 1.
- the weight percent of the third solution included MTMS at a weight percent of 10.83%, and methanol at a weight percent of 89. 17%.
- Example #28 was prepared according to the following steps:
- the weight percent of the mixed solution included TMOS at a weight percent of 37.47%, methanol at a weight percent of 44.35%, water at a weight percent of 18%, and ammonium hydroxide at a weight percent of 0.17%.
- a third solution by mixing 2 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 9.2: 1.
- the weight percent of the third solution included MTMS at a weight percent of 10.83% and methanol at a weight percent of 89. 17%.
- Example #29 was prepared according to the following steps:
- A Preparing a first solution by mixing 8 mL TMOS and 17 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 38.13% and methanol at a weight percent of 61.87%.
- the weight percent of the mixed solution included TMOS at a weight percent of 19.63%, methanol at a weight percent of 63.7%, water at a weight percent of 16.62%, and ammonium hydroxide at a weight percent of 0.05%.
- Example #30 was prepared according to the following steps:
- A Preparing a first solution by mixing 10 mL TMOS and 16.5 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 44.25% and methanol at a weight percent of 55.75%.
- the weight percent of the mixed solution included TMOS at a weight percent of 23.81%, methanol at a weight percent of 60.01%, water at a weight percent of 16. 13%, and ammonium hydroxide at a weight percent of 0.05%.
- a third solution by mixing 2 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 4.83: 1.
- the weight percent of the third solution included MTMS at a weight percent of 10.83% and methanol at a weight percent of 89. 17%.
- Example #31 was prepared according to the following steps:
- A Preparing a first solution by mixing 15 mL TMOS and 14 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 58.38% and methanol at a weight percent of 41.62%.
- the weight percent of the mixed solution included TMOS at a weight percent of 34.74%, methanol at a weight percent of 49.52%, water at a weight percent of 15.69%, and ammonium hydroxide at a weight percent of 0.05%.
- F Preparing a third solution by mixing 2.5 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 5.79: 1.
- the weight percent of the third solution included MTMS at a weight percent of 13.18% and methanol at a weight percent of 86.82%.
- G Begin aging the silica wet gel sheet in the mold at room temperature for a time period of 240 hours.
- Example #32 was prepared according to the following steps:
- A Preparing a first solution by mixing 19 mL TMOS and 11.5 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 68.39% and methanol at a weight percent of 31.61%.
- the weight percent of the mixed solution included TMOS at a weight percent of 43.82%, methanol at a weight percent of 50.51%, water at a weight percent of 15.62%, and ammonium hydroxide at a weight percent of 0.05%.
- a third solution by mixing 3 mL MTMS and 20 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 6. 11 : 1.
- the weight percent of the third solution included MTMS at a weight percent of 15.41% and methanol at a weight percent of 84.59%.
- hydrophobic silica aerogel sheets (Examples #33-#40) were prepared using TMOS and MTMS at densities of 100 mg/cc, 120mg/cc, 150 mg/cc, and 200 mg/cc. In these examples, a hydrophobic silica wet gel sheet was formed after aging was completed. Properties obtained for hydrophobic silica aerogel sheets in these examples were also measured using methods described herein and tabulated in Tables 9-10.
- Example #33 (TMOS/MTMS at 3,7: 1 ratio at 100 mg/cc) [0237]
- Example #33 was prepared according to the following steps:
- A Preparing a first solution by mixing 8 mL TMOS and 17 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 38.13% and methanol at a weight percent of 61.87%.
- the weight percent of the mixed solution included TMOS at a weight percent of 19.63%, methanol at a weight percent of 63.71%, water at a weight percent of 16.49%, and ammonium hydroxide at a weight percent of 0.17%.
- a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 3.7: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #34 was prepared according to the following steps:
- A Preparing a first solution by mixing 10 mL TMOS and 16.5 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 44.25% and methanol at a weight percent of 55.75%.
- the weight percent of the mixed solution included TMOS at a weight percent of 23.81%, methanol at a weight percent of 60.02%, water at a weight percent of 16%, and ammonium hydroxide at a weight percent of 0.17%.
- a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 4.6: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #35 was prepared according to the following steps:
- A Preparing a first solution by mixing 15 mL TMOS and 16 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 55. 11% and methanol at a weight percent of 44.89%.
- the weight percent of the mixed solution included TMOS at a weight percent of 32.45%, methanol at a weight percent of 52.87%, water at a weight percent of 14.53%, and ammonium hydroxide at a weight percent of 0.15%.
- a third solution by mixing 2 mL MTMS and 397 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 6.9: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #36 (TMOS/MTMS at 9,2: 1 ratio at 200 mg/cc)
- Example #36 was prepared according to the following steps:
- A Preparing a first solution by mixing 20 mL TMOS and 12.4 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 67.87% and methanol at a weight percent of 32.13%.
- the weight percent of the mixed solution included TMOS at a weight percent of 41.12%, methanol at a weight percent of 38.94%, water at a weight percent of 19.76%, and ammonium hydroxide at a weight percent of 0.18%.
- a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 9.2: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #37 was prepared according to the following steps:
- A Preparing a first solution by mixing 8 mL TMOS and 17 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 38.13% and methanol at a weight percent of 61.87%.
- C. Mixing the first solution and second solution together to form a mixed solution.
- the weight percent of the mixed solution included TMOS at a weight percent of 19.63%, methanol at a weight percent of 63.7%, water at a weight percent of 16.62%, and ammonium hydroxide at a weight percent of 0.05%.
- D. Depositing the mixed solution into a mold having interior dimensions of 5 inches by 5 inches by 3.5 mm. Sealing the mold to provide an airtight environment.
- a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 3.86: 1,
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #38 was prepared according to the following steps:
- A Preparing a first solution by mixing 10 mL TMOS and 16.5 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 44.25% and methanol at a weight percent of 55.75%.
- the weight percent of the mixed solution included TMOS at a weight percent of 23.81%, methanol at a weight percent of 60.01%, water at a weight percent of 16. 13%, and ammonium hydroxide at a weight percent of 0.05%.
- a third solution by mixing 2 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 4.83: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.61% and methanol at a weight percent of 99.39%.
- Example #39 was prepared according to the following steps:
- A Preparing a first solution by mixing 15 mL TMOS and 14 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 58.38% and methanol at a weight percent of 41.62%.
- the weight percent of the mixed solution included TMOS at a weight percent of 34.74%, methanol at a weight percent of 49.52%, water at a weight percent of 15.69%, and ammonium hydroxide at a weight percent of 0.05%.
- a third solution by mixing 2.5 mL MTMS and 398 mL methanol.
- the MTMS was provided in a controlled amount such that a molar ratio of the TMOS:MTMS was 6.79: 1.
- the weight percent of the third solution included MTMS at a weight percent of 0.76% and methanol at a weight percent of 99.24%.
- Example #40 was prepared according to the following steps:
- A Preparing a first solution by mixing 19 mL TMOS and 11.5 mL methanol.
- the weight percent of the first solution included TMOS at a weight percent of 68.39% and methanol at a weight percent of 31.61%.
- the weight percent of the mixed solution included TMOS at a weight percent of 43.82%, methanol at a weight percent of 40.51%, water at a weight percent of 15.62%, and ammonium hydroxide at a weight percent of 0.05%.
- Exemplar ⁇ ' hydrophobic silica aerogel sheets (Examples #41 -#44) were prepared using MS-51 and MTMS at densities of 100 mg/cc, 120 mg/cc, 150 mg/cc, and 200 mg/cc. In these examples, a catalyst step was included and hydrophobization took place in the first solvent bath. Properties obtained for hydrophobic silica aerogel sheets in these examples were also measured using methods described herein and tabulated in Table 11.
- Example #41 was prepared according to the following steps:
- A Preparing a first solution by mixing 5.5 mL MS-51 and 37 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 18.23% and methanol at a weight percent of 81.77%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 15.24%, methanol at a weight percent of 68.33%, water at a weight percent of 16.41%, and ammonium hydroxide at a weight percent of 0.02%.
- Example #42 was prepared according to the following steps:
- A Preparing a first solution by mixing 7 mL MS-51 and 35.5 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 22.83% and methanol at a weight percent of 77.17%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 19. 13%, methanol at a weight percent of 64.66%, water at a weight percent of 16. 19%, and ammonium hydroxide at a weight percent of 0.02%.
- Steps J through M were repeated as performed in Example #41.
- the total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #42 is listed in Table 11. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #42 are also shown in Table 11.
- Example #43 was prepared according to the following steps:
- A Preparing a first solution by mixing 9 mL MS-51 and 33.5 mL methanol. The weight percent of the first solution included MS-51 at a weight percent of 28.73% and methanol at a weight percent of 71.27%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 24. 15%, methanol at a weight percent of 59.93%, water at a weight percent of 15.9%, and ammonium hydroxide at a weight percent of 0.02%.
- Preparing solvent exchange solution by mixing the third solution, the fourth solution and 388 mL methanol.
- the weight percent of all components used to form the solvent exchange solution included MTMS at a weight percent of 0.75%, methanol at a weight percent of 99.24%, and ammonium hydroxide at a weight percent of 0.01%.
- Steps J through M were repeated as performed in Example #41.
- the total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #43 is listed in Table 11. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #43 are also shown in Table 11.
- Example #44 was prepared according to the following steps:
- A Preparing a first solution by mixing 12 mL MS-51 and 31 mL methanol.
- the weight percent of the first solution included MS-51 at a weight percent of 36.74% and methanol at a weight percent of 63.26%.
- the weight percent of the mixed solution included MS-51 at a weight percent of 31.09%, methanol at a weight percent of 53.54%, water at a weight percent of 15.35%, and ammonium hydroxide at a weight percent of .02%.
- Steps J through M were repeated as performed in Example #41.
- the total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #44 is listed in Table 11. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #44 are also shown in Table 11.
- Additional exemplary hydrophobic silica aerogel sheets (Examples #45-#48) were prepared using TMOS and MTMS at densities of 100 mg/cc, 120 mg/cc, 150 mg/cc, and 200 mg/cc. In these examples, a catalyst step was included and hydrophobization took place in the first solvent bath. Properties obtained for hydrophobic silica aerogel sheets in these examples were also measured using methods described herein and tabulated in Table 12.
- Example #45 was prepared according to the following steps:
- the weight percent of the mixed solution included TMOS at a weight percent of 19.63%, methanol at a weight percent of 63.7%, water at a weight percent of 16.62%, and ammonium hydroxide at a weight percent of .05%.
- Steps J through M were repeated as performed in Example #41.
- the total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #45 is listed in Table 12. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #45 are also shown in Table 12.
- Example #46 was prepared according to the following steps:
- the weight percent of the mixed solution included TMOS at a weight percent of 23.81%, methanol at a weight percent of 60.01%, water at a weight percent of 16. 13%, and ammonium hydroxide at a weight percent of .05%.
- Steps J through M were repeated as performed in Example #41.
- the total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #46 is listed in Table 12. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #46 are also shown in Table 12.
- Example #47 was prepared according to the following steps:
- the weight percent of the mixed solution included TMOS at a weight percent of 34.74%, methanol at a weight percent of 49.52%, water at a weight percent of 15.69%, and ammonium hydroxide at a weight percent of .05%.
- G Preparing a third solution by mixing .03 mL ammonium hydroxide and .9 mL methanol.
- the weight percent of the third solution include ammonium hydroxide at a weight percent of 3.71% and methanol at a weight percent of 96.29%.
- Steps J through M were repeated as performed in Example #41.
- the total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #47 is listed in Table 12. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #47 are also shown in Table 12.
- Example #48 was prepared according to the following steps:
- the weight percent of the mixed solution included TMOS at a weight percent of 43.82%, methanol at a weight percent of 40.51%, water at a weight percent of 15.62%, and ammonium hydroxide at a weight percent of .05%.
- Example #41 The total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #48 is listed in Table 12. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #48 are also shown in Table 12. Table 12
- Exemplary hydrophobic silica aerogel sheets were prepared using MS-51 and MTES at densities of 100 mg/cc, 120 mg/cc, 150 mg/cc, and 200 mg/cc. In these examples, a catalyst step was included and hydrophobization took place in the first solvent bath. Properties obtained for hydrophobic silica aerogel sheets in these examples were also measured using methods described herein and tabulated in Table 13.
- Example #49 was prepared according to the following steps:
- the weight percent of the mixed solution included MS-51 at a weight percent of 15.24%, methanol at a weight percent of 68.33%, water at a weight percent of 16.41%, and ammonium hydroxide at a weight percent of .02%.
- Steps J through M were repeated as performed in Example #41.
- the total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #49 is listed in Table 13. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #49 are also shown in Table 13.
- Example #50 was prepared according to the following steps:
- the weight percent of the mixed solution included MS-51 at a weight percent of 19. 13%, methanol at a weight percent of 64.66%, water at a weight percent of 16. 19%, and ammonium hydroxide at a weight percent of .02%.
- Steps J through M were repeated as performed in Example #41.
- the total weight percent of all components used to form the hydrophobic silica wet gel sheet of Example #50 is listed in Table 13. Properties obtained for the resulting hydrophobic silica aerogel sheet of Example #50 are also shown in Table 13.
- Example #51 was prepared according to the following steps:
- the weight percent of the mixed solution included MS-51 at a weight percent of 24. 15%, methanol at a weight percent of 59.93%, water at a weight percent of 15.9%, and ammonium hydroxide at a weight percent of .02%.
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Abstract
Description
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Applications Claiming Priority (8)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202363497251P | 2023-04-20 | 2023-04-20 | |
| US202363497250P | 2023-04-20 | 2023-04-20 | |
| US63/497,251 | 2023-04-20 | ||
| US63/497,250 | 2023-04-20 | ||
| US18/636,553 US20240351314A1 (en) | 2023-04-20 | 2024-04-16 | Hydrophobic silica wet gel and aerogel |
| US18/636,553 | 2024-04-16 | ||
| US18/636,591 | 2024-04-16 | ||
| US18/636,591 US20240359451A1 (en) | 2023-04-20 | 2024-04-16 | Hydrophobic silica wet gel and aerogel |
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| WO2024220696A2 true WO2024220696A2 (en) | 2024-10-24 |
| WO2024220696A3 WO2024220696A3 (en) | 2024-11-28 |
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| PCT/US2024/025233 Pending WO2024220696A2 (en) | 2023-04-20 | 2024-04-18 | Hydrophobic silica wet gel and aerogel |
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| WO2025221261A1 (en) * | 2024-04-17 | 2025-10-23 | Cardinal Cg Company | Hydrophobic silica aerogel |
| US12472721B2 (en) | 2022-03-09 | 2025-11-18 | Cardinal Cg Company | Silica wet gel and aerogel |
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| WO2024220696A3 (en) | 2024-11-28 |
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