Electrical control of spin relaxation in a quantum dot
Mesoscale and Nanoscale Physics
2010-09-28 v1
Abstract
We demonstrate electrical control of the spin relaxation time T_1 between Zeeman split spin states of a single electron in a lateral quantum dot. We find that relaxation is mediated by the spin-orbit interaction, and by manipulating the orbital states of the dot using gate voltages we vary the relaxation rate W= (T_1)^-1 by over an order of magnitude. The dependence of W on orbital confinement agrees with theoretical predictions and from these data we extract the spin-orbit length. We also measure the dependence of W on magnetic field and demonstrate that spin-orbit mediated coupling to phonons is the dominant relaxation mechanism down to 1T, where T_1 exceeds 1s.
Cite
@article{arxiv.0707.1656,
title = {Electrical control of spin relaxation in a quantum dot},
author = {S. Amasha and K. MacLean and Iuliana P. Radu and D. M. Zumbuhl and M. A. Kastner and M. P. Hanson and A. C. Gossard},
journal= {arXiv preprint arXiv:0707.1656},
year = {2010}
}
Comments
4 pages, 3 figures