Back to Search Start Over

Spin manipulation and decoherence in a quantum dot mediated by a synthetic spinâ€"orbit coupling of broken T -symmetry.

Authors :
Huang, Peihao
Hu, Xuedong
Source :
New Journal of Physics. Jan2022, Vol. 24 Issue 1, p1-14. 14p.
Publication Year :
2022

Abstract

The electrical control of a spin qubit in a quantum dot (QD) relies on spinâ€"orbit coupling (SOC), which could be either intrinsic to the underlying crystal lattice or heterostructure, or extrinsic via, for example, a micro-magnet. In experiments, micromagnets have been used as a synthetic SOC to enable strong coupling of a spin qubit in quantum dots with electric fields. Here we study theoretically the spin relaxation, pure dephasing, spin manipulation, and spinâ€"photon coupling of an electron in a QD due to the synthetic SOC induced spinâ€"orbit mixing. We find qualitative difference in the spin dynamics in the presence of a synthetic SOC compared with the case of the intrinsic SOC. Specifically, spin relaxation due to the synthetic SOC and deformation potential phonon emission (or Johnson noise) shows B 0 5 (or B 0) dependence with the magnetic field, which is in contrast with the B 0 7 (or B 0 3 ) dependence in the case of the intrinsic SOC. Moreover, charge noise induces fast spin dephasing to the first order of the synthetic SOC, which is in sharp contrast with the negligible spin pure dephasing in the case of the intrinsic SOC. These qualitative differences are attributed to the broken time-reversal symmetry (T -symmetry) of the synthetic SOC. An SOC with broken T -symmetry (such as the synthetic SOC from a micro-magnet) eliminates the ‘Van Vleck cancellation’ and causes a finite longitudinal spinâ€"electric coupling that allows the longitudinal coupling between spin and electric field, and in turn allows spin pure dephasing. Finally, through proper choice of magnetic field orientation, the electric-dipole spin resonance via the synthetic SOC can be improved with potential applications in spin-based quantum computing. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13672630
Volume :
24
Issue :
1
Database :
Academic Search Index
Journal :
New Journal of Physics
Publication Type :
Academic Journal
Accession number :
154440165
Full Text :
https://doi.org/10.1088/1367-2630/ac430c