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Reversible Band Gap Engineering in Carbon Nanotubes by Radial Deformation

Authors :
Salim Ciraci
Oguz Gulseren
Taner Yildirim
Çetin Kılıç
Çıracı, Salim
Source :
Physical Review B-Condensed Matter and Materials Physics
Publication Year :
2002
Publisher :
arXiv, 2002.

Abstract

We present a systematic analysis of the effect of radial deformation on the atomic and electronic structure of zigzag and armchair single wall carbon nanotubes using the first principle plane wave method. The nanotubes were deformed by applying a radial strain, which distorts the circular cross section to an elliptical one. The atomic structure of the nanotubes under this strain are fully optimized, and the electronic structure is calculated self-consistently to determine the response of individual bands to the radial deformation. The band gap of the insulating tube is closed and eventually an insulator-metal transition sets in by the radial strain which is in the elastic range. Using this property a multiple quantum well structure with tunable and reversible electronic structure is formed on an individual nanotube and its band-lineup is determined from first-principles. The elastic energy due to the radial deformation and elastic constants are calculated and compared with classical theories.<br />Comment: To be appear in Phys. Rev. B, Apr 15, 2002

Details

Database :
OpenAIRE
Journal :
Physical Review B-Condensed Matter and Materials Physics
Accession number :
edsair.doi.dedup.....c12002cd7091c8e2069231fbf13cc1b3
Full Text :
https://doi.org/10.48550/arxiv.cond-mat/0203226