The Effect of Structural Distortions on the Electronic Structure of Carbon Nanotubes
arXiv:cond-mat/9808269 · doi:10.1016/S0009-2614(98)01105-1
Abstract
We calculated the effects of structural distortions on the electronic structure of carbon nanotubes. The key modification of the electronic structure brought about by bending a nanotube involves an increased mixing of and -states. This mixing leads to an enhanced density-of-states in the valence band near the Fermi energy region. While in a straight tube the states accessible for electrical conduction are essentially pure C()-states, they acquire significant C() character upon bending. Bending also leads to a charge polarization of the C-C bonds in the deformed region reminiscent of interface dipole formation. Scattering of conduction electrons at the distorted regions may lead to electron localization at low temperatures.
11 pages and 4 figures, (figure 4 corrected)
Cited by in corpus (12)
- Tuning carbon nanotube bandgaps with strain
- Quantum transport in carbon nanotubes
- Electrical and Mechanical Properties of Twisted Carbon Nanotubes
- Conductance of Distorted Carbon Nanotubes
- Electrical transport through carbon nanotube junctions created by mechanical manipulation
- Tunable adsorption on carbon nanotubes
- Fractional quantum conductance in carbon nanotubes
- Reversible Band Gap Engineering in Carbon Nanotubes by Radial Deformation
- Structural and Electronic Properties of a Carbon Nanotorus: Effects of Delocalized Vs Localized Deformations
- Variable and reversible quantum structures on a single carbon nanotube
- Low Energy Coherent Transport in Metallic Carbon Nanotube Junctions
- Coherent electron transport in a helical nanotube