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Strain Sensitivity in Single Walled Carbon Nanotubes for Multifunctional Materials

AUTHOR Administration (Nasa), National Aeronaut
PUBLISHER Independently Published (08/21/2020)
PRODUCT TYPE Paperback (Paperback)

Description
Single walled carbon nanotubes represent the future of structural aerospace vehicle systems due to their unparalleled strength characteristics and demonstrated multifunctionality. This multifunctionality rises from the CNT's unique capabilities for both metallic and semiconducting electron transport, electron spin polarizability, and band gap modulation under strain. By incorporating the use of electric field alignment and various lithography techniques, a single wall carbon nanotube (SWNT) test bed for measurement of conductivity/strain relationships has been developed. Nanotubes are deposited at specified locations through dielectrophoresis. The circuit is designed such that the central, current carrying section of the nanotube is exposed to enable atomic force microscopy and manipulation in situ while the transport properties of the junction are monitored. By applying this methodology to sensor development a flexible single wall carbon nanotube (SWNT) based strain sensitive device has been developed. Studies of tensile testing of the flexible SWNT device vs conductivity are also presented, demonstrating the feasibility of using single walled HiPCO (high-pressure carbon monoxide) carbon nanotubes as strain sensing agents in a multi-functional materials system. Heath, D. M. (Technical Monitor) and Smits, Jan M., VI Langley Research Center NASA/CR-2005-213272 NAS1-00135
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Product Details
ISBN-13: 9798676606039
Binding: Paperback or Softback (Trade Paperback (Us))
Content Language: English
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Page Count: 98
Carton Quantity: 41
Product Dimensions: 8.50 x 0.20 x 11.02 inches
Weight: 0.55 pound(s)
Country of Origin: US
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BISAC Categories
Reference | Research
Reference | Space Science - General
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Single walled carbon nanotubes represent the future of structural aerospace vehicle systems due to their unparalleled strength characteristics and demonstrated multifunctionality. This multifunctionality rises from the CNT's unique capabilities for both metallic and semiconducting electron transport, electron spin polarizability, and band gap modulation under strain. By incorporating the use of electric field alignment and various lithography techniques, a single wall carbon nanotube (SWNT) test bed for measurement of conductivity/strain relationships has been developed. Nanotubes are deposited at specified locations through dielectrophoresis. The circuit is designed such that the central, current carrying section of the nanotube is exposed to enable atomic force microscopy and manipulation in situ while the transport properties of the junction are monitored. By applying this methodology to sensor development a flexible single wall carbon nanotube (SWNT) based strain sensitive device has been developed. Studies of tensile testing of the flexible SWNT device vs conductivity are also presented, demonstrating the feasibility of using single walled HiPCO (high-pressure carbon monoxide) carbon nanotubes as strain sensing agents in a multi-functional materials system. Heath, D. M. (Technical Monitor) and Smits, Jan M., VI Langley Research Center NASA/CR-2005-213272 NAS1-00135
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Paperback