English

Hydrostatic Pressure Effects on the Structural and Electronic Properties of Carbon Nanotubes

Other Condensed Matter 2009-11-10 v1 Materials Science

Abstract

We study the structural and electronic properties of isolated single-wall carbon nanotubes (SWNTs) under hydrostatic pressure using a combination of theoretical techniques: Continuum elasticity models, classical molecular dynamics simulations, tight-binding electronic structure methods, and first-principles total energy calculations within the density-functional and pseudopotential frameworks. For pressures below a certain critical pressure PcP_c, the SWNTs' structure remains cylindrical and the Kohn-Sham energy gaps of semiconducting SWNTs have either positive or negative pressure coefficients depending on the value of (n,m)(n,m), with a distinct "family" (of the same nmn-m) behavior. The diameter and chirality dependence of the pressure coefficients can be described by a simple analytical expression. At PcP_c, molecular-dynamics simulations predict that isolated SWNTs undergo a pressure-induced symmetry-breaking transformation from a cylindrical shape to a collapsed geometry. This transition is described by a simple elastic model as arising from the competition between the bond-bending and PVPV terms in the enthalpy. The good agreement between calculated and experimental values of PcP_c provides a strong support to the ``collapse'' interpretation of the experimental transitions in bundles.

Keywords

Cite

@article{arxiv.cond-mat/0409241,
  title  = {Hydrostatic Pressure Effects on the Structural and Electronic Properties of Carbon Nanotubes},
  author = {Rodrigo B. Capaz and Catalin D. Spataru and Paul Tangney and Marvin L. Cohen and Steven G. Louie},
  journal= {arXiv preprint arXiv:cond-mat/0409241},
  year   = {2009}
}

Comments

To appear in the Proceedings of the 11th International Conference on High Pressure Semiconductor Physics (invited paper)