Intrinsic and Rashba Spin-orbit Interactions in Graphene Sheets
Abstract
Starting from a microscopic tight-binding model and using second order perturbation theory, we derive explicit expressions for the intrinsic and Rashba spin-orbit interaction induced gaps in the Dirac-like low-energy band structure of an isolated graphene sheet. The Rashba interaction parameter is first order in the atomic carbon spin-orbit coupling strength and first order in the external electric field perpendicular to the graphene plane, whereas the intrinsic spin-orbit interaction which survives at E=0 is second order in . The spin-orbit terms in the low-energy effective Hamiltonian have the form proposed recently by Kane and Mele. \textit{Ab initio} electronic structure calculations were performed as a partial check on the validity of the tight-binding model.
Keywords
Cite
@article{arxiv.cond-mat/0606504,
title = {Intrinsic and Rashba Spin-orbit Interactions in Graphene Sheets},
author = {Hongki Min and J. E. Hill and N. A. Sinitsyn and B. R. Sahu and Leonard Kleinman and A. H. MacDonald},
journal= {arXiv preprint arXiv:cond-mat/0606504},
year = {2009}
}
Comments
5 pages, 2 figures; typos corrected, references updated