Anisotropy of spin-orbit induced electron spin relaxation in [001] and [111] grown GaAs quantum dots
arXiv:1409.2392 · doi:10.1088/1367-2630/17/3/033014
Abstract
We report a systematic study of the spin relaxation anisotropy between single electron Zeeman sublevels in cuboidal GaAs quantum dots (QDs). The QDs are subject to an in-plane magnetic field. As the field orientation varies, the relaxation rate oscillates periodically, showing ``magic'' angles where the relaxation rate is suppressed by several orders of magnitude. This behavior is found in QDs with different shapes, heights, crystallographic orientations and external fields. The origin of these angles can be traced back to the symmetries of the spin admixing terms of the Hamiltonian. In [001] grown QDs, the suppression angles are different for Rashba and Dresselhaus spin-orbit terms. By contrast, in [111] grown QDs they are the same, which should facilitate a thorough suppression of spin-orbit induced relaxation. Our results evidence that cubic Dresselhaus terms play a critical role in determining the spin relaxation anisotropy even in quasi-2D QDs.
8 pages, 6 figs, submitted to PRB on 07/30/14
References in corpus (6)
- Orbital and spin relaxation in single and coupled quantum dots
- Spin relaxation anisotropy in a GaAs quantum dot
- Phonon-induced electron relaxation in weakly-confined single and coupled quantum dots
- Anisotropy of spin splitting and spin relaxation in lateral quantum dots
- Tuning of the spin-orbit interaction in a quantum dot by an in-plane magnetic field
- Anisotropic spin relaxation in quantum dots