Carbon Nanotubes in Helically Modulated Potentials

Loading...
Thumbnail Image

Related Collections

Degree type

Discipline

Subject

Physical Sciences and Mathematics
Physics

Funder

Grant number

License

Copyright date

Distributor

Related resources

Author

Michalski, P. J.

Contributor

Abstract

We calculate effects of an applied helically symmetric potential on the low energy electronic spectrum of a carbon nanotube in the continuum approximation. The spectrum depends on the strength of this potential and on a dimensionless geometrical parameter, P, which is the ratio of the circumference of the nanotube to the pitch of the helix. We find that the minimum band gap of a semiconducting nanotube is reduced by an arbitrarily weak helical potential, and for a given field strength there is an optimal P which produces the biggest change in the band gap. For metallic nanotubes the Fermi velocity is reduced by this potential and for strong fields two small gaps appear at the Fermi surface in addition to the gapless Dirac point. A simple model is developed to estimate the magnitude of the field strength and its effect on DNA-carbon nanotube complexes in an aqueous solution. We find that under typical experimental conditions the predicted effects of a helical potential are likely to be small and we discuss several methods for increasing the size of these effects.

Advisor

Date Range for Data Collection (Start Date)

Date Range for Data Collection (End Date)

Digital Object Identifier

Series name and number

Publication date

2008-02-27

Journal title

Volume number

Issue number

Publisher

Publisher DOI

Journal Issues

Comments

Suggested Citation: P.J. Michalski and E.J. Mele. (2008). "Carbon nanotubes in helically modulated potentials." Physical Review B. 77, 085429. © 2008 The American Physical Society http://dx.doi.org/10.1103/PhysRevB.77.085429

Recommended citation

Collection