Volume 249, Issue 12 p. 2450-2453
Original Paper

DFT investigations of the piezoresistive effect of carbon nanotubes for sensor application

Christian Wagner,

Corresponding Author

Center for Microtechnologies, Chemnitz University of Technology, 09126 Chemnitz, Germany

Phone: +49-371-531-38699, Fax: +49-371-531-838699Search for more papers by this author
Jörg Schuster,

Fraunhofer Institute for Electronic Nanosystems (ENAS), Technologie-Campus 3, 09126 Chemnitz, Germany

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Thomas Gessner,

Center for Microtechnologies, Chemnitz University of Technology, 09126 Chemnitz, Germany

Fraunhofer Institute for Electronic Nanosystems (ENAS), Technologie-Campus 3, 09126 Chemnitz, Germany

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First published: 23 October 2012
Citations: 11

Abstract

We investigate the piezoresistive effect of carbon nanotubes (CNTs) within density functional theory (DFT) aiming at application-relevant CNTs. CNTs are excellent candidates for the usage in nano-electromechanical sensors (NEMSs) due to their small band gap at zero strain leading to a finite resistivity at room temperature. The application of strain induces a band gap-opening leading to a tremendous change in the resistivity. DFT with the LDA approximation yields reasonable results for pure carbon systems like CNTs and is applied to calculate the electronic structure of experimentally relevant CNTs. For the transport part, a simple ballistic transport model based on the band gap is used. We compare our DFT results for the band gaps of strained CNTs to results of tight binding (TB) models. By introducing a scaling factor of equation image, an excellent agreement of the DFT data with TB model, published by Yang and Han [Phys. Rev. Lett. 85, 154 (2000)], is obtained.

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