Michel et al., 2012 - Google Patents
Self-healing electrodes for dielectric elastomer actuatorsMichel et al., 2012
View PDF- Document ID
- 16856937917017957428
- Author
- Michel S
- Chu B
- Grimm S
- Nüesch F
- Borgschulte A
- Opris D
- Publication year
- Publication venue
- Journal of Materials Chemistry
External Links
Snippet
A conductive, printable and stretchable composite based on 20 wt% reduced graphite nanoplatelets in silicone to be used as the electrode in dielectric elastomer actuators was developed. It has a sheet resistance of 0.1 kΩ□− 1 and a low modulus of elasticity …
- 229920002595 Dielectric elastomer 0 title abstract description 7
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01L—MEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
- G01L1/00—Measuring force or stress in general
- G01L1/20—Measuring force or stress in general by measuring variations in ohmic resistance of solid materials or of electrically-conductive fluids; by making use of electro-kinetic cells, i.e. liquid-containing cells wherein an electrical potential is produced or varied upon the application of stress
- G01L1/22—Measuring force or stress in general by measuring variations in ohmic resistance of solid materials or of electrically-conductive fluids; by making use of electro-kinetic cells, i.e. liquid-containing cells wherein an electrical potential is produced or varied upon the application of stress using resistance strain gauges
- G01L1/2287—Measuring force or stress in general by measuring variations in ohmic resistance of solid materials or of electrically-conductive fluids; by making use of electro-kinetic cells, i.e. liquid-containing cells wherein an electrical potential is produced or varied upon the application of stress using resistance strain gauges constructional details of the strain gauges
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N27/00—Investigating or analysing materials by the use of electric, electro-chemical, or magnetic means
- G01N27/02—Investigating or analysing materials by the use of electric, electro-chemical, or magnetic means by investigating the impedance of the material
- G01N27/04—Investigating or analysing materials by the use of electric, electro-chemical, or magnetic means by investigating the impedance of the material by investigating resistance
-
- H—ELECTRICITY
- H01—BASIC ELECTRIC ELEMENTS
- H01B—CABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
- H01B1/00—Conductors or conductive bodies characterised by the conductive materials; Selection of materials as conductors
- H01B1/20—Conductive material dispersed in non-conductive organic material
- H01B1/24—Conductive material dispersed in non-conductive organic material the conductive material comprising carbon-silicon compounds, carbon or silicon
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Michel et al. | Self-healing electrodes for dielectric elastomer actuators | |
Li et al. | Ultrasensitive, flexible, and low-cost nanoporous piezoresistive composites for tactile pressure sensing | |
Zhang et al. | Flexible and high-performance piezoresistive strain sensors based on carbon nanoparticles@ polyurethane sponges | |
Goncalves et al. | Green solvent approach for printable large deformation thermoplastic elastomer based piezoresistive sensors and their suitability for biomedical applications | |
Han et al. | Thermally and electrically conductive multifunctional sensor based on epoxy/graphene composite | |
Tung et al. | Enhancing the sensitivity of graphene/polyurethane nanocomposite flexible piezo-resistive pressure sensors with magnetite nano-spacers | |
Wang et al. | Graphene/polydimethylsiloxane nanocomposite strain sensor | |
Ferreira et al. | Relationship between electromechanical response and percolation threshold in carbon nanotube/poly (vinylidene fluoride) composites | |
Gul et al. | Retracted article: 3D printed highly flexible strain sensor based on TPU–graphene composite for feedback from high speed robotic applications | |
Boland et al. | Surface coatings of silver nanowires lead to effective, high conductivity, high-strain, ultrathin sensors | |
US20120073388A1 (en) | Force sensing compositions, devices and methods | |
Riyajuddin et al. | Linear piezoresistive strain sensor based on graphene/g-C3N4/PDMS heterostructure | |
Hwang et al. | Electromechanical strain sensing using polycarbonate-impregnated carbon nanotube–graphene nanoplatelet hybrid composite sheets | |
US9618403B2 (en) | Strain sensors and methods of manufacture and use | |
Zhang et al. | A printed MWCNTs/PDMS based flexible resistive temperature detector | |
Sanli et al. | Piezoresistive pressure sensor based on carbon nanotubes/epoxy composite under cyclic loading | |
Saber et al. | Superior piezoelectric composite films: taking advantage of carbon nanomaterials | |
Abyaneh et al. | Piezoresistivity and mechanical behavior of metal-polymer composites under uniaxial pressure | |
Mahato et al. | Flexible piezo-resistive strain sensors using all-polydimethylsiloxane based hybrid nanocomposites for wearable electronics | |
Akouros et al. | Highly stretchable strain sensors based on Marangoni self-assemblies of graphene and its hybrids with other 2D materials | |
Neella et al. | Negative temperature coefficient behavior of graphene-silver nanocomposite films for temperature sensor applications | |
Makireddi et al. | Non-monotonic piezoresistive behaviour of graphene nanoplatelet (GNP)-polymer composite flexible films prepared by solvent casting. | |
Ma et al. | A flexible tactile and shear sensing array fabricated by novel buckypaper patterning technique | |
Knite et al. | Polymer/nanographite composites for mechanical impact sensing | |
Janczak et al. | Screen printed resistive pressure sensors fabricated from polymer composites with carbon nanotubes |