US20060105141A1 - Mesoporous nano-crystalline titania structures for hydrogen sensing - Google Patents
Mesoporous nano-crystalline titania structures for hydrogen sensing Download PDFInfo
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- US20060105141A1 US20060105141A1 US10/993,569 US99356904A US2006105141A1 US 20060105141 A1 US20060105141 A1 US 20060105141A1 US 99356904 A US99356904 A US 99356904A US 2006105141 A1 US2006105141 A1 US 2006105141A1
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- GWEVSGVZZGPLCZ-UHFFFAOYSA-N Titan oxide Chemical group O=[Ti]=O GWEVSGVZZGPLCZ-UHFFFAOYSA-N 0.000 title claims abstract description 129
- 229910052739 hydrogen Inorganic materials 0.000 title claims description 11
- 239000001257 hydrogen Substances 0.000 title claims description 11
- 125000004435 hydrogen atom Chemical class [H]* 0.000 title 1
- 239000000463 material Substances 0.000 claims abstract description 23
- 239000007788 liquid Substances 0.000 claims abstract description 18
- 239000003795 chemical substances by application Substances 0.000 claims abstract description 15
- 239000013335 mesoporous material Substances 0.000 claims abstract description 15
- 239000002243 precursor Substances 0.000 claims abstract description 14
- 238000000034 method Methods 0.000 claims abstract description 9
- 239000002904 solvent Substances 0.000 claims abstract description 9
- 239000002253 acid Substances 0.000 claims abstract description 4
- 239000011148 porous material Substances 0.000 claims description 18
- 239000013076 target substance Substances 0.000 claims description 11
- 239000012528 membrane Substances 0.000 claims description 10
- TWNQGVIAIRXVLR-UHFFFAOYSA-N oxo(oxoalumanyloxy)alumane Chemical compound O=[Al]O[Al]=O TWNQGVIAIRXVLR-UHFFFAOYSA-N 0.000 claims description 10
- 239000002019 doping agent Substances 0.000 claims description 9
- 230000008859 change Effects 0.000 claims description 8
- UFHFLCQGNIYNRP-UHFFFAOYSA-N Hydrogen Chemical compound [H][H] UFHFLCQGNIYNRP-UHFFFAOYSA-N 0.000 claims description 7
- 229910052697 platinum Inorganic materials 0.000 claims description 7
- 229910052763 palladium Inorganic materials 0.000 claims description 6
- 229910052779 Neodymium Inorganic materials 0.000 claims description 5
- 238000010438 heat treatment Methods 0.000 claims description 5
- 229910052748 manganese Inorganic materials 0.000 claims description 5
- 239000002707 nanocrystalline material Substances 0.000 claims description 5
- 229910052757 nitrogen Inorganic materials 0.000 claims description 5
- 229910052684 Cerium Inorganic materials 0.000 claims description 4
- 230000003993 interaction Effects 0.000 claims description 4
- 229910052742 iron Inorganic materials 0.000 claims description 4
- 229910052717 sulfur Inorganic materials 0.000 claims description 4
- VXUYXOFXAQZZMF-UHFFFAOYSA-N titanium(IV) isopropoxide Chemical compound CC(C)O[Ti](OC(C)C)(OC(C)C)OC(C)C VXUYXOFXAQZZMF-UHFFFAOYSA-N 0.000 claims description 4
- 229910052720 vanadium Inorganic materials 0.000 claims description 4
- 229910052771 Terbium Inorganic materials 0.000 claims description 3
- 229920001400 block copolymer Polymers 0.000 claims description 3
- 239000003945 anionic surfactant Substances 0.000 claims description 2
- YHWCPXVTRSHPNY-UHFFFAOYSA-N butan-1-olate;titanium(4+) Chemical compound [Ti+4].CCCC[O-].CCCC[O-].CCCC[O-].CCCC[O-] YHWCPXVTRSHPNY-UHFFFAOYSA-N 0.000 claims description 2
- 239000003093 cationic surfactant Substances 0.000 claims description 2
- 238000001704 evaporation Methods 0.000 claims description 2
- ZEIWWVGGEOHESL-UHFFFAOYSA-N methanol;titanium Chemical compound [Ti].OC.OC.OC.OC ZEIWWVGGEOHESL-UHFFFAOYSA-N 0.000 claims description 2
- 238000002156 mixing Methods 0.000 claims description 2
- 239000002736 nonionic surfactant Substances 0.000 claims description 2
- HKJYVRJHDIPMQB-UHFFFAOYSA-N propan-1-olate;titanium(4+) Chemical compound CCCO[Ti](OCCC)(OCCC)OCCC HKJYVRJHDIPMQB-UHFFFAOYSA-N 0.000 claims description 2
- JMXKSZRRTHPKDL-UHFFFAOYSA-N titanium ethoxide Chemical compound [Ti+4].CC[O-].CC[O-].CC[O-].CC[O-] JMXKSZRRTHPKDL-UHFFFAOYSA-N 0.000 claims description 2
- XJDNKRIXUMDJCW-UHFFFAOYSA-J titanium tetrachloride Chemical compound Cl[Ti](Cl)(Cl)Cl XJDNKRIXUMDJCW-UHFFFAOYSA-J 0.000 claims description 2
- 229910052721 tungsten Inorganic materials 0.000 claims description 2
- 239000002159 nanocrystal Substances 0.000 claims 2
- 239000000725 suspension Substances 0.000 claims 1
- 239000002888 zwitterionic surfactant Substances 0.000 claims 1
- BASFCYQUMIYNBI-UHFFFAOYSA-N platinum Substances [Pt] BASFCYQUMIYNBI-UHFFFAOYSA-N 0.000 description 9
- 230000004044 response Effects 0.000 description 7
- 239000007789 gas Substances 0.000 description 5
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- 238000001000 micrograph Methods 0.000 description 5
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- 125000006850 spacer group Chemical group 0.000 description 4
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- 150000002431 hydrogen Chemical class 0.000 description 3
- 230000007246 mechanism Effects 0.000 description 3
- IJGRMHOSHXDMSA-UHFFFAOYSA-N Atomic nitrogen Chemical compound N#N IJGRMHOSHXDMSA-UHFFFAOYSA-N 0.000 description 2
- OKTJSMMVPCPJKN-UHFFFAOYSA-N Carbon Chemical compound [C] OKTJSMMVPCPJKN-UHFFFAOYSA-N 0.000 description 2
- LFQSCWFLJHTTHZ-UHFFFAOYSA-N Ethanol Chemical compound CCO LFQSCWFLJHTTHZ-UHFFFAOYSA-N 0.000 description 2
- 238000002441 X-ray diffraction Methods 0.000 description 2
- 238000001514 detection method Methods 0.000 description 2
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- 239000004698 Polyethylene Substances 0.000 description 1
- 239000004743 Polypropylene Substances 0.000 description 1
- VYPSYNLAJGMNEJ-UHFFFAOYSA-N Silicium dioxide Chemical compound O=[Si]=O VYPSYNLAJGMNEJ-UHFFFAOYSA-N 0.000 description 1
- 230000004888 barrier function Effects 0.000 description 1
- 230000008901 benefit Effects 0.000 description 1
- 230000015556 catabolic process Effects 0.000 description 1
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- 239000013078 crystal Substances 0.000 description 1
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- 229910044991 metal oxide Inorganic materials 0.000 description 1
- 150000004706 metal oxides Chemical class 0.000 description 1
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- 238000000696 nitrogen adsorption--desorption isotherm Methods 0.000 description 1
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Images
Classifications
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/0004—Gaseous mixtures, e.g. polluted air
- G01N33/0009—General constructional details of gas analysers, e.g. portable test equipment
- G01N33/0027—General constructional details of gas analysers, e.g. portable test equipment concerning the detector
- G01N33/0036—General constructional details of gas analysers, e.g. portable test equipment concerning the detector specially adapted to detect a particular component
- G01N33/005—H2
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B82—NANOTECHNOLOGY
- B82Y—SPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
- B82Y15/00—Nanotechnology for interacting, sensing or actuating, e.g. quantum dots as markers in protein assays or molecular motors
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B82—NANOTECHNOLOGY
- B82Y—SPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
- B82Y30/00—Nanotechnology for materials or surface science, e.g. nanocomposites
-
- C—CHEMISTRY; METALLURGY
- C04—CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
- C04B—LIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
- C04B35/00—Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products
- C04B35/01—Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products based on oxide ceramics
- C04B35/46—Shaped ceramic products characterised by their composition; Ceramics compositions; Processing powders of inorganic compounds preparatory to the manufacturing of ceramic products based on oxide ceramics based on titanium oxides or titanates
-
- C—CHEMISTRY; METALLURGY
- C04—CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
- C04B—LIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
- C04B38/00—Porous mortars, concrete, artificial stone or ceramic ware; Preparation thereof
- C04B38/0045—Porous mortars, concrete, artificial stone or ceramic ware; Preparation thereof by a process involving the formation of a sol or a gel, e.g. sol-gel or precipitation processes
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- C—CHEMISTRY; METALLURGY
- C04—CEMENTS; CONCRETE; ARTIFICIAL STONE; CERAMICS; REFRACTORIES
- C04B—LIME, MAGNESIA; SLAG; CEMENTS; COMPOSITIONS THEREOF, e.g. MORTARS, CONCRETE OR LIKE BUILDING MATERIALS; ARTIFICIAL STONE; CERAMICS; REFRACTORIES; TREATMENT OF NATURAL STONE
- C04B2111/00—Mortars, concrete or artificial stone or mixtures to prepare them, characterised by specific function, property or use
- C04B2111/00474—Uses not provided for elsewhere in C04B2111/00
- C04B2111/0081—Uses not provided for elsewhere in C04B2111/00 as catalysts or catalyst carriers
- C04B2111/00827—Photocatalysts
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S977/00—Nanotechnology
- Y10S977/902—Specified use of nanostructure
- Y10S977/932—Specified use of nanostructure for electronic or optoelectronic application
- Y10S977/953—Detector using nanostructure
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S977/00—Nanotechnology
- Y10S977/902—Specified use of nanostructure
- Y10S977/932—Specified use of nanostructure for electronic or optoelectronic application
- Y10S977/953—Detector using nanostructure
- Y10S977/957—Of chemical property or presence
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T428/00—Stock material or miscellaneous articles
- Y10T428/24—Structurally defined web or sheet [e.g., overall dimension, etc.]
- Y10T428/24273—Structurally defined web or sheet [e.g., overall dimension, etc.] including aperture
Definitions
- the present invention is a structure that includes a substantially non-conductive frame having an exterior surface.
- the structure defines a plurality of passages that open to the exterior surface.
- Mesoporous material is disposed in the plurality of passages and is supported therein by the frame.
- the invention is a sensor of a target substance in which a mesoporous titania material is disposed within a frame.
- the mesoporous titania material includes mesopores that are capable of receiving the target substance therein.
- the mesoporous titania is capable of interacting with the target substance and has a property that is a function of interaction with the target substance.
- a component senses a change in the property when the mesoporous nanocrystalline material is exposed to the target substance.
- the invention is a method for making a mesoporous nanocrystalline titania hybrid material.
- a templating agent is mixed into a solvent and an acid to form a template liquid.
- a titania precursor is added to the template liquid.
- a substantially non-conductive frame having an exterior surface and defining a plurality of passages that open to the exterior surface is placed into the titania precursor and the template liquid.
- the titania precursor and the template liquid are allowed to infiltrate into the plurality of passages.
- the solvent is evaporated from the template liquid, thereby forming a titania gel encapsulating the templating agent.
- the gel is heated at a preselected temperature for a preselected period of time sufficient to remove substantially the templating agent from the non-conductive frame and the titania, thereby leaving a mesoporous titania material in the plurality of passages.
- FIG. 1 is a top perspective schematic view of an exemplary embodiment of the invention.
- FIG. 2 is a cross-sectional view of the embodiment shown in FIG. 1 , taken along line 2 - 2 .
- FIG. 3A is a schematic illustration of mesopores in a cubic arrangement.
- FIG. 3B is a schematic illustration of mesopores in a hexagonal arrangement.
- FIG. 4 is a micrograph of a cross-section of a mesoporous structure.
- FIG. 5 is a micrograph of an ordered mesoporous structure.
- FIG. 6 is a cross-sectional schematic illustration of a gas sensor employing a mesoporous structure.
- FIGS. 7A-7F are schematic diagrams showing steps executed in one method of making a mesoporous structure.
- FIG. 8 is a graph of x-ray diffraction intensity of an experimental sample of mesoporous material.
- FIG. 9 is a nitrogen adsorption graph of one experimental sample.
- one illustrative embodiment includes a structure 100 that includes a substantially non-conductive frame 110 .
- the frame 110 has at least one exterior surface 114 and defines a plurality of passages 120 that open to the exterior surface 114 .
- the frame 110 could, for example, include an anodic aluminum oxide membrane 112 .
- mesoporous material 122 is disposed in the plurality of passages 120 and is supported therein by the frame 110 .
- the mesoporous material 122 includes a matrix, such as a titania matrix, and a plurality of mesopores 130 that are in fluid communication with the exterior surface 114 .
- the titania matrix may be crystalline, amorphous or a hybrid of the amorphous and nanocrystalline material.
- the passages 120 will have a diameter in a range of between 20 nm to 210 nm, with a range of between 10 nm to 300 nm being possible.
- the mesopores 130 will typically have a diameter in the range of between 2 nm to 50 nm.
- the mesopores 302 may be exhibit a cubic ordering. As shown in FIG. 3B , the mesopores 304 may also exhibit a hexagonal ordering. As would be clear to those of skill in the art, other orderings are possible and would fall within the scope of the invention.
- a micrograph 400 of a cross-section of one experimental embodiment is shown in FIG. 4 .
- this micrograph one can see vertical walls of the frame 110 and the passages 120 filled with mesoporous material.
- a micrograph 500 of a passage with highly ordered mesopores is shown in FIG. 5 .
- FIG. 6 One embodiment of a hydrogen sensor 600 employing mesoporous material is shown in FIG. 6 .
- Mesoporous titania 604 is disposed within an anodic aluminum oxide frame 602 . Hydrogen received in the mesopores interacts with the mesoporous titania defining the mesopores.
- the mesoporous titania has an electrical resistance that is a function of interaction with hydrogen.
- a resistance sensor 620 that is electrically coupled to the mesoporous titania 604 through a pair of contacts 610 (such as platinum contacts) senses a change in the resistance of the mesoporous titania 604 when it is exposed to hydrogen.
- one illustrative method for making a structure includes mixing a templating agent 720 into a solution 710 of a solvent and an acid to form a template liquid 722 .
- a titania precursor is added to the template liquid 722 .
- the templating agent 720 may self-assemble to form an ordered arrangement, as shown in FIG. 7B .
- An anodic aluminum oxide membrane 730 or other substantially non-conductive frame that defines a plurality of passages, is placed in the titania precursor and the template liquid 722 .
- the template liquid and titania precursor are allowed to infiltrate into the plurality of passages of the anodic aluminum oxide membrane 730 , as shown in FIG. 7C .
- the solvent is allowed to evaporate from the template liquid, thereby forming a titania gel 740 encapsulating the templating agent 720 , as shown in FIG. 7D .
- the gel 740 is heated in an oven 750 for enough time and at a high enough temperature to remove substantially all of the templating agent from the non-conductive frame and the titania (either through vaporization or oxidation), thereby leaving a plurality of mesopores 760 in a matrix of titania 744 .
- templating agents include: a non-ionic block copolymer (e.g., polyethylene oxide-polypropylene oxide-polyethylene oxide, including Pluronic type P123, F127, F108, F88), a cationic surfactant, an anionic surfactant, a zwritterionic surfactant, a non-ionic surfactant, or a combination thereof.
- titania precursors include titanium ethoxide, titanium chloride, titanium isopropoxide, titanium butoxide, titanium methoxide, titanium propoxide, or a combination thereof. In one experimental example, the gel was heated in air at 400° C. for 10 hours. The resulting mesoporous titania was then allowed to cool at a rate of 60° C. per hour after completion of the heating step.
- Such an optical sensor could measure phosphorescence or work according to an interferometric sensor model.
- Possible mechanisms for changing an optical property in doped mesoporous titania include the following: direct adsorption in which a monolayer on the surface changes the index of refraction; coordination number change from adsorption; change in oxidation state; change in crystal field strength; and change in hydration state.
- Doping of the titania with luminescent species can also lead to improvements in the selectivity and response time.
- the synthesis method used for these structures easily accommodates doping.
- Surface modification of the titania mesopores with a material catalytic for H 2 such as Pd and Pt offers the potential to increase the response time of the sensor by increasing the adsorption kinetics.
- Titania is known to exhibit a photocatalytic effect when exposed to light with an energy higher than its bandgap. Practically, this means it is possible to regenerate a titania structure that has been fouled by an organic by exposing the system to UV light. This would generate radicals at the surface of the titania which would oxidize the organic substance. The rate of self-cleaning would depend on the photocatalytic activity of the titania, the incident UV intensity, and the time of UV exposure.
- a mesoporous titania sensor was fabricated using the following steps.
- a precursor solution was prepared by first completely dissolving 1.5 g of P123 block copolymer in 24 g of ethanol. The solution was then poured into a Petri dish, containing several elastomer spacers. The spacers were completely submerged after adding the precursor solution.
- An anodic aluminum oxide membrane (referred to herein as “AAO,” 25 mm diameter, 50 ⁇ m thick, with 200 nm pores) was immersed horizontally in the fluid on top of the spacers.
- the AAO used was an ANODISC inorganic membrane available from Whatman International Ltd. of Florham Park, N.J.
- the solvent was allowed to evaporate at room temperature for 20 hours. During this time, the fluid level in the dish dropped below the level of the AAO membrane due to evaporation of the volatile components.
- the AAO membrane was removed from the spacers and heated in air at 400° C. for about 10 hours. The heating and cooling rate was 60° C. per hour. Electrical contact pads were fabricated on the top and bottom surfaces of the membrane using a Pt powder paste and firing at 400° C. for 1 hour. Pt lead wires were bonded to the Pt contact pads using Ag paste.
- the sample was placed in a gas-tight tube through which N 2 gas and a mixture of H 2 /N 2 gases could be introduced, and the electrical resistance was measured using an ohm-meter.
- N 2 was introduced at a rate of 200 sccm (standard cubic centimeters per minute) and a resistance of about 14-15 mega-ohms was observed.
- a 4% H 2 /N 2 gas mixture was added at a rate of 5 sccm to the flow to make a mixture of 975 ppm H 2 in N 2 . After 10 minutes, the resistance dropped to about 5 mega-ohms. The flow of the H 2 /N 2 mixture was stopped and after 5 minutes the resistance reverted back to a high value of about 16 mega-ohms.
- FIG. 8 shows an x-ray diffraction pattern 800 of one experimental sample of mesoporous material.
- the peaks are indexable to the anatase phase and the peak broadening indicates nanometer-sized crystallites.
- a nitrogen adsorption-desorption isotherm 900 of one experimental sample was measured at 77 K.
- the hysteresis is typical of a type IV isotherm and indicates mesoporosity.
- the BET surface area of the sample, as fitted from the data, is about 40 m 2 /g.
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Abstract
A structure includes a substantially non-conductive frame having an exterior surface. The structure defines a plurality of passages that open to the exterior surface. Mesoporous material is disposed in the plurality of passages and is supported therein by the frame. In a method for making a mesoporous nanocrystalline titania hybrid material, a templating agent, an acid, and a titania precursor is mixed into a template liquid. A frame that defines a plurality of passages is placed into the template liquid. A solvent is evaporated from the template liquid, thereby forming a titania gel encapsulating the templating agent. The gel is heated to remove substantially the templating agent from the non-conductive frame and the titania, thereby leaving a mesoporous titania material.
Description
- 1. Field of the Invention
- The invention relates to nanoscale structures and, more specifically, to a nano-crystalline titania structure that may be used in sensor applications.
- 2. Description of the Prior Art
- Presently, hydrogen sensors employ electrochemical, optical or thermal detection methods. One system employs titania nanotubes arranged in an array. Such systems generally have pore sizes of greater than about 20 nm. Thus, the surface area of the sensing element is limited, thereby limiting performance indicia such as response and sensitivity. Recently, there has been renewed interest in metal oxide semiconductor-based devices. In titania, for example, the presence of hydrogen can dramatically change the resistivity of the material through a variety of physical mechanisms. The most common sensors depend on Schottky barrier modulation in structures with Pd or Pt electrodes. Present systems that utilize titania suffer from poor selectivity and slow response times.
- Conventional microporous materials such as zeolites have regular pores with diameters of less than about 2 nm. Macroporous materials have pores greater than about 50 nm, but with widely varying pore sizes. Examples of well-known porous materials include activated carbon used in deodorizers and silica gel used in desiccants. The conventional porous materials with regular pore sizes, such as zeolites, have limitations in pore diameter size, while those with large pores have widely varying pore sizes. Mesoporous materials are porous materials with regularly arranged, relatively uniform mesopores (2 nm to 50 nm in diameter). They generally exhibit a large surface area.
- Existing methods are limited by a combination of high cost, limited sensitivity, poor selectivity and slow response times. Contamination of the sample and subsequent performance degradation also limit existing systems use.
- Therefore, there is a need for a hydrogen sensor that exhibits good selectivity and that has a quick response.
- The disadvantages of the prior art are overcome by the present invention, which, in one aspect, is a structure that includes a substantially non-conductive frame having an exterior surface. The structure defines a plurality of passages that open to the exterior surface. Mesoporous material is disposed in the plurality of passages and is supported therein by the frame.
- In another aspect, the invention is a sensor of a target substance in which a mesoporous titania material is disposed within a frame. The mesoporous titania material includes mesopores that are capable of receiving the target substance therein. The mesoporous titania is capable of interacting with the target substance and has a property that is a function of interaction with the target substance. A component senses a change in the property when the mesoporous nanocrystalline material is exposed to the target substance.
- In yet another aspect, the invention is a method for making a mesoporous nanocrystalline titania hybrid material. A templating agent is mixed into a solvent and an acid to form a template liquid. A titania precursor is added to the template liquid. A substantially non-conductive frame having an exterior surface and defining a plurality of passages that open to the exterior surface is placed into the titania precursor and the template liquid. The titania precursor and the template liquid are allowed to infiltrate into the plurality of passages. The solvent is evaporated from the template liquid, thereby forming a titania gel encapsulating the templating agent. The gel is heated at a preselected temperature for a preselected period of time sufficient to remove substantially the templating agent from the non-conductive frame and the titania, thereby leaving a mesoporous titania material in the plurality of passages.
- These and other aspects of the invention will become apparent from the following description of the preferred embodiments taken in conjunction with the following drawings. As would be obvious to one skilled in the art, many variations and modifications of the invention may be effected without departing from the spirit and scope of the novel concepts of the disclosure.
-
FIG. 1 is a top perspective schematic view of an exemplary embodiment of the invention. -
FIG. 2 is a cross-sectional view of the embodiment shown inFIG. 1 , taken along line 2-2. -
FIG. 3A is a schematic illustration of mesopores in a cubic arrangement. -
FIG. 3B is a schematic illustration of mesopores in a hexagonal arrangement. -
FIG. 4 is a micrograph of a cross-section of a mesoporous structure. -
FIG. 5 is a micrograph of an ordered mesoporous structure. -
FIG. 6 is a cross-sectional schematic illustration of a gas sensor employing a mesoporous structure. -
FIGS. 7A-7F are schematic diagrams showing steps executed in one method of making a mesoporous structure. -
FIG. 8 is a graph of x-ray diffraction intensity of an experimental sample of mesoporous material. -
FIG. 9 is a nitrogen adsorption graph of one experimental sample. - A preferred embodiment of the invention is now described in detail. Referring to the drawings, like numbers indicate like parts throughout the views. As used in the description herein and throughout the claims, the following terms take the meanings explicitly associated herein, unless the context clearly dictates otherwise: the meaning of “a,” “an,” and “the” includes plural reference, the meaning of “in” includes “in” and “on.” Unless otherwise specified herein, the drawings are not necessarily drawn to scale. Also, as used herein “mesoporous nanocrystalline hybrid material” refers to a porous material with nanoscale crystals and an amorphous matrix. Diameters of pores and passages listed herein refer to average diameters to provide for eccentricity.
- As shown in
FIG. 1 , one illustrative embodiment includes astructure 100 that includes a substantiallynon-conductive frame 110. Theframe 110 has at least oneexterior surface 114 and defines a plurality ofpassages 120 that open to theexterior surface 114. Theframe 110 could, for example, include an anodicaluminum oxide membrane 112. - As shown in
FIG. 2 ,mesoporous material 122 is disposed in the plurality ofpassages 120 and is supported therein by theframe 110. Themesoporous material 122 includes a matrix, such as a titania matrix, and a plurality ofmesopores 130 that are in fluid communication with theexterior surface 114. The titania matrix may be crystalline, amorphous or a hybrid of the amorphous and nanocrystalline material. Typically, thepassages 120 will have a diameter in a range of between 20 nm to 210 nm, with a range of between 10 nm to 300 nm being possible. Depending on the size of thepassages 120 and other process-related factors, themesopores 130 will typically have a diameter in the range of between 2 nm to 50 nm. - As shown in
FIG. 3A , themesopores 302 may be exhibit a cubic ordering. As shown inFIG. 3B , themesopores 304 may also exhibit a hexagonal ordering. As would be clear to those of skill in the art, other orderings are possible and would fall within the scope of the invention. - A
micrograph 400 of a cross-section of one experimental embodiment is shown inFIG. 4 . In this micrograph, one can see vertical walls of theframe 110 and thepassages 120 filled with mesoporous material. Amicrograph 500 of a passage with highly ordered mesopores is shown inFIG. 5 . - One embodiment of a
hydrogen sensor 600 employing mesoporous material is shown inFIG. 6 .Mesoporous titania 604 is disposed within an anodicaluminum oxide frame 602. Hydrogen received in the mesopores interacts with the mesoporous titania defining the mesopores. The mesoporous titania has an electrical resistance that is a function of interaction with hydrogen. Aresistance sensor 620, that is electrically coupled to themesoporous titania 604 through a pair of contacts 610 (such as platinum contacts) senses a change in the resistance of themesoporous titania 604 when it is exposed to hydrogen. - As shown in
FIGS. 7A through 7F , one illustrative method for making a structure, as disclosed above, includes mixing atemplating agent 720 into asolution 710 of a solvent and an acid to form atemplate liquid 722. A titania precursor is added to thetemplate liquid 722. Thetemplating agent 720 may self-assemble to form an ordered arrangement, as shown inFIG. 7B . - An anodic
aluminum oxide membrane 730, or other substantially non-conductive frame that defines a plurality of passages, is placed in the titania precursor and thetemplate liquid 722. The template liquid and titania precursor are allowed to infiltrate into the plurality of passages of the anodicaluminum oxide membrane 730, as shown inFIG. 7C . - The solvent is allowed to evaporate from the template liquid, thereby forming a
titania gel 740 encapsulating thetemplating agent 720, as shown inFIG. 7D . As shown inFIG. 7E , thegel 740 is heated in anoven 750 for enough time and at a high enough temperature to remove substantially all of the templating agent from the non-conductive frame and the titania (either through vaporization or oxidation), thereby leaving a plurality ofmesopores 760 in a matrix oftitania 744. Examples of templating agents include: a non-ionic block copolymer (e.g., polyethylene oxide-polypropylene oxide-polyethylene oxide, including Pluronic type P123, F127, F108, F88), a cationic surfactant, an anionic surfactant, a zwritterionic surfactant, a non-ionic surfactant, or a combination thereof. Examples of titania precursors include titanium ethoxide, titanium chloride, titanium isopropoxide, titanium butoxide, titanium methoxide, titanium propoxide, or a combination thereof. In one experimental example, the gel was heated in air at 400° C. for 10 hours. The resulting mesoporous titania was then allowed to cool at a rate of 60° C. per hour after completion of the heating step. - A dopant may be added to the solvent to achieve certain desired physical properties. For example, dopants may be added to make sensors directed to a specific element, or to fine tune the sensitivity of a sensor to specific concentration ranges. Examples of suitable dopants include: Ce, Co, Fe, Mn, N, Nd, Pd, Pt, S, V, W, Eu, Cr, Tb, Er, Pr, and combinations thereof. Dopants such as Ce, Co, Fe, Mn, N, Nd, Pd, Pt, S, V, W may be useful in fabrication of electrical sensors, whereas dopants such as Eu, Cr, Tb, Er, Pr, Mn and Nd may be useful in optical sensors using mesoporous titania. Such an optical sensor could measure phosphorescence or work according to an interferometric sensor model. Possible mechanisms for changing an optical property in doped mesoporous titania include the following: direct adsorption in which a monolayer on the surface changes the index of refraction; coordination number change from adsorption; change in oxidation state; change in crystal field strength; and change in hydration state.
- One embodiment of the invention uses a mesoporous nanocrystalline titania structure as the sensing element for hydrogen. The mesoporous character of the porosity provides a large surface area for interaction between the hydrogen and the titania. This embodiment employs thin film configurations, which can improve the response time of the sensor. (Thinner films reduce the time needed for gas diffusion and also decrease the electrical path length in the titania structure.) Sensing elements fabricated within larger pores of a template such as anodic aluminum oxide offer the benefit of access to H2 from both sides of the sensor, effectively reducing the thickness by half, and simplifying integration into devices.
- The use of mesoporous nanocrystalline titania also addresses the sensitivity issue by using the a detection mechanism similar to that observed in nanotubes. The thickness of the nanocrystalline walls is comparable (about 2-10 nm), but the pore diameter is much smaller (about 10 nm versus 20-100 nm). This higher effective packing leads to a greater degree of sensitivity.
- Doping of the titania with luminescent species can also lead to improvements in the selectivity and response time. The synthesis method used for these structures easily accommodates doping. Surface modification of the titania mesopores with a material catalytic for H2 such as Pd and Pt offers the potential to increase the response time of the sensor by increasing the adsorption kinetics.
- Titania is known to exhibit a photocatalytic effect when exposed to light with an energy higher than its bandgap. Practically, this means it is possible to regenerate a titania structure that has been fouled by an organic by exposing the system to UV light. This would generate radicals at the surface of the titania which would oxidize the organic substance. The rate of self-cleaning would depend on the photocatalytic activity of the titania, the incident UV intensity, and the time of UV exposure.
- In one illustrative example, a mesoporous titania sensor was fabricated using the following steps. A precursor solution was prepared by first completely dissolving 1.5 g of P123 block copolymer in 24 g of ethanol. The solution was then poured into a Petri dish, containing several elastomer spacers. The spacers were completely submerged after adding the precursor solution. An anodic aluminum oxide membrane (referred to herein as “AAO,” 25 mm diameter, 50 μm thick, with 200 nm pores) was immersed horizontally in the fluid on top of the spacers. The AAO used was an ANODISC inorganic membrane available from Whatman International Ltd. of Florham Park, N.J. (4) The solvent was allowed to evaporate at room temperature for 20 hours. During this time, the fluid level in the dish dropped below the level of the AAO membrane due to evaporation of the volatile components. The AAO membrane was removed from the spacers and heated in air at 400° C. for about 10 hours. The heating and cooling rate was 60° C. per hour. Electrical contact pads were fabricated on the top and bottom surfaces of the membrane using a Pt powder paste and firing at 400° C. for 1 hour. Pt lead wires were bonded to the Pt contact pads using Ag paste. The sample was placed in a gas-tight tube through which N2 gas and a mixture of H2/N2 gases could be introduced, and the electrical resistance was measured using an ohm-meter. N2 was introduced at a rate of 200 sccm (standard cubic centimeters per minute) and a resistance of about 14-15 mega-ohms was observed. A 4% H2/N2 gas mixture was added at a rate of 5 sccm to the flow to make a mixture of 975 ppm H2 in N2. After 10 minutes, the resistance dropped to about 5 mega-ohms. The flow of the H2/N2 mixture was stopped and after 5 minutes the resistance reverted back to a high value of about 16 mega-ohms.
-
FIG. 8 shows anx-ray diffraction pattern 800 of one experimental sample of mesoporous material. The peaks are indexable to the anatase phase and the peak broadening indicates nanometer-sized crystallites. As shown inFIG. 9 , a nitrogen adsorption-desorption isotherm 900 of one experimental sample was measured at 77 K. The hysteresis is typical of a type IV isotherm and indicates mesoporosity. The BET surface area of the sample, as fitted from the data, is about 40 m2/g. - The above described embodiments are given as illustrative examples only. It will be readily appreciated that many deviations may be made from the specific embodiments disclosed in this specification without departing from the invention. Accordingly, the scope of the invention is to be determined by the claims below rather than being limited to the specifically described embodiments above.
Claims (25)
1. A structure, comprising:
a. a substantially non-conductive frame having an exterior surface and defining a plurality of passages that open to the exterior surface; and
b. mesoporous material disposed in the plurality of passages and supported therein by the frame.
2. The structure of claim 1 , wherein the frame comprises anodic aluminum oxide.
3. The structure of claim 2 , wherein the frame comprises an anodic aluminum oxide membrane.
4. The structure of claim 1 , wherein the passages have a diameter in a range of between 10 nm to 300 nm.
5. The structure of claim 4 , wherein the passages have a diameter in a range of between 20 nm to 210 nm.
6. The structure of claim 1 , wherein the mesoporous material comprises titania.
7. The structure of claim 1 , wherein the mesoporous material has a pore size in a range of between 2 and 20 nm.
8. The structure of claim 1 , wherein the mesoporous material comprises nanocrystals.
9. The structure of claim 1 , wherein the mesoporous material comprises a hybrid of nanocrystalline material and amorphous material.
10. The structure of claim 1 , further comprising a dopant added to the mesoporous material.
11. The structure of claim 10 , wherein the dopant is selected from a list consisting essentially of: Ce, Co, Fe, Mn, N, Nd, Pd, Pt, S, V, W, Eu, Cr, Tb, Er, Pr, and combinations thereof.
12. A sensor of a target substance, comprising:
a. a mesoporous titania material disposed within a frame, the mesoporous titania material having mesopores that are capable of receiving the target substance therein, the mesoporous titania capable of interacting with the target substance, the mesoporous titania material having a property that is a function of interaction with the target substance; and
b. a component that senses a change in the property when the mesoporous nanocrystalline material is exposed to the target substance.
13. The sensor of claim 12 , wherein the target substance comprises hydrogen.
14. The sensor of claim 12 , wherein the property comprises an electrical resistance.
15. The sensor of claim 12 , wherein the frame comprises anodic aluminum oxide.
16. The sensor of claim 15 , wherein the frame comprises an anodic aluminum oxide membrane.
17. The sensor of claim 12 , wherein the mesoporous titania material has a pore size in a range of between 2 nm and 20 nm.
18. The sensor of claim 12 , wherein the mesoporous titania material comprises nanocrystals.
19. The sensor of claim 12 , wherein the mesoporous titania material comprises a hybrid of nanocrystalline material and amorphous material.
20. The sensor of claim 12 , further comprising a dopant added to the mesoporous titania material.
21. The sensor of claim 20 , wherein the dopant is selected from a list consisting essentially of: Ce, Co, Fe, Mn, N, Nd, Pd, Pt, S, V, W, and combinations thereof.
22. A method for making a mesoporous nanocrystalline titania hybrid material, comprising the steps of:
a. mixing a templating agent into a solvent and an acid to form a template liquid;
b. adding a titania precursor to the template liquid;
c. placing into the titania precursor and the template liquid a substantially non-conductive frame having an exterior surface and defining a plurality of passages that open to the exterior surface and allowing the titania precursor and the template liquid to infiltrate into the plurality of passages;
d. evaporating the solvent from the template liquid, thereby forming a titania gel encapsulating the templating agent; and
e. heating the gel at a preselected temperature for a preselected period of time sufficient to remove substantially the templating agent from the non-conductive frame and the titania, thereby leaving a mesoporous titania material in the plurality of passages.
23. The method of claim 22 , wherein the templating agent is a material selected from a group consisting essentially of: a non-ionic block copolymer, a cationic surfactant, a zwitterionic surfactant and a non-ionic surfactant and an anionic surfactant, and combinations thereof.
24. The method of claim 22 , wherein the titania precursor is a material selected from a group consisting essentially of: titanium ethoxide, titanium chloride, titanium isopropoxide, titanium butoxide, titanium methoxide, titanium propoxide, and combinations thereof.
25. The method of claim 22 , wherein the heating step comprises heating the suspension in air at 400° C.
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WO2008090055A1 (en) * | 2007-01-22 | 2008-07-31 | Siemens Aktiengesellschaft | System for substance analysis and production thereof, containing a nanocrystalline structure sensitive to the substance |
WO2009152003A2 (en) * | 2008-06-11 | 2009-12-17 | Gm Global Technology Operations, Inc. | Mesoporous electrically conductive metal oxide catalyst supports |
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WO2008090055A1 (en) * | 2007-01-22 | 2008-07-31 | Siemens Aktiengesellschaft | System for substance analysis and production thereof, containing a nanocrystalline structure sensitive to the substance |
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DE102011122119A1 (en) * | 2011-03-25 | 2012-09-27 | Odb-Tec Gmbh & Co. Kg | Thin film diode arrangement for hydrogen sensor in hydrogen-powered vehicle, has sponge-like porous structure and corresponding porous structure formed on titanium oxide layer and metal layer, respectively |
CN103364449A (en) * | 2012-03-31 | 2013-10-23 | 湖北大学 | A TiO2 Nanotube Array Room Temperature Hydrogen Sensor Covered with Pt Electrodes |
WO2015004468A3 (en) * | 2013-07-10 | 2015-05-21 | Smart Separations Limited | Apparatus and methods |
WO2016110687A1 (en) * | 2015-01-06 | 2016-07-14 | Smart Separations Limited | Apparatus and methods |
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EP3854768A3 (en) * | 2019-12-30 | 2021-10-20 | Samsung Electronics Co., Ltd. | Active material structure, electrode structure including the same, secondary battery including the same, and method of fabricating the same |
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US7833483B2 (en) | 2010-11-16 |
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