Hyperfine-phonon spin relaxation in a single-electron GaAs quantum dot
Abstract
Understanding and control of the spin relaxation time is among the key challenges for spin based qubits. A larger is generally favored, setting the fundamental upper limit to the qubit coherence and spin readout fidelity. In GaAs quantum dots at low temperatures and high in-plane magnetic fields , the spin relaxation relies on phonon emission and spin-orbit coupling. The characteristic dependence and pronounced -field anisotropy were already confirmed experimentally. However, it has also been predicted 15 years ago that at low enough fields, the spin-orbit interaction is replaced by the coupling to the nuclear spins, where the relaxation becomes isotropic, and the scaling changes to . We establish these predictions experimentally, by measuring over an unprecedented range of magnetic fields -- made possible by lower temperature -- and report a maximum s at the lowest fields, setting a new record for the electron spin lifetime in a nanostructure.
Cite
@article{arxiv.1711.01474,
title = {Hyperfine-phonon spin relaxation in a single-electron GaAs quantum dot},
author = {Leon C. Camenzind and Liuqi Yu and Peter Stano and Jeramy Zimmerman and Arthur C. Gossard and Daniel Loss and Dominik M. Zumbühl},
journal= {arXiv preprint arXiv:1711.01474},
year = {2018}
}
Comments
7 pages, 4 (color) figures