Publication | Closed Access
Electromechanical Properties of Metallic, Quasimetallic, and Semiconducting Carbon Nanotubes under Stretching
480
Citations
17
References
2003
Year
EngineeringMechanical EngineeringSemiconducting Carbon NanotubesFlexible SensorCarbon-based MaterialNanoelectronicsNanotube Electromechanical SystemsCarbon-based FilmsCarbon NanotubesNanomechanicsMaterials ScienceElectrical EngineeringMetallic Nanotubes ExhibitOne-dimensional MaterialMechanical PropertiesNanomaterialsFlexible ElectronicsPiezoelectric NanogeneratorsApplied PhysicsNano Electro Mechanical SystemElectromechanical SystemNanotubesElectromechanical Properties
An electromechanical system is constructed to explore the electrical properties of various types of suspended single-walled carbon nanotubes under the influence of tensile stretching. Small band-gap semiconducting (or quasimetallic) nanotubes exhibit the largest resistance changes and piezoresistive gauge factors ( approximately 600 to 1000) under axial strains. Metallic nanotubes exhibit much weaker but nonzero sensitivity. Comparison between experiments and theoretical predictions and potential applications of nanotube electromechanical systems for physical sensors (e.g., strain gauges, pressure sensors, etc.) are discussed.
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