Random walk approach to spin dynamics in a two-dimensional electron gas with spin-orbit coupling
Abstract
We introduce and solve a semi-classical random walk (RW) model that describes the dynamics of spin polarization waves in zinc-blende semiconductor quantum wells. We derive the dispersion relations for these waves, including the Rashba, linear and cubic Dresselhaus spin-orbit interactions, as well as the effects of an electric field applied parallel to the spin polarization wavevector. In agreement with fully quantum mechanical calculations [Kleinert and Bryksin, Phys. Rev. B \textbf{76}, 205326 (2007)], the RW approach predicts that spin waves acquire a phase velocity in the presence of the field that crosses zero at a nonzero wavevector, . In addition, we show that the spin-wave decay rate is independent of field at but increases as for . These predictions can be tested experimentally by suitable transient spin grating experiments.
Keywords
Cite
@article{arxiv.1008.0132,
title = {Random walk approach to spin dynamics in a two-dimensional electron gas with spin-orbit coupling},
author = {Luyi Yang and J. Orenstein and Dung-Hai Lee},
journal= {arXiv preprint arXiv:1008.0132},
year = {2011}
}