Dimensional Dependence of Weak Localization Corrections and Spin Relaxation in Quantum Wires with Rashba Spin-Orbit Coupling
P. Wenk, S. Kettemann

TL;DR
This paper investigates how the quantum correction to conductivity and spin relaxation in disordered quantum wires with Rashba spin-orbit coupling depend on the wire's width, revealing a crossover from weak anti- to weak localization and conditions for stable spin helix states.
Contribution
It provides a detailed analysis of the dimensional dependence of weak localization corrections and spin relaxation, including effects of boundary conditions, magnetic fields, and confinement potential.
Findings
Crossover from weak anti- to weak localization as wire width decreases.
Spin helix solutions are stable in narrow wires for arbitrary Rashba-Dresselhaus ratios.
Spin relaxation rate varies non-monotonically with wire width, smallest at edges for wide wires.
Abstract
The quantum correction to the conductivity in disordered quantum wires with linear Rashba spin-orbit coupling is obtained. For quantum wires with spin-conserving boundary conditions, we find a crossover from weak anti- to weak localization as the wire width W is reduced using exact diagonalization of the Cooperon equation. This crossover is due to the dimensional dependence of the spin relaxation rate of conduction electrons, which becomes diminished, when the wire width is smaller than the bulk spin precession length . We thus confirm previous results for small wire width, [PRL98,176808(2007)], where only the transverse 0-modes of the Cooperon equation had been taken into account. We find that spin helix solutions become stable for arbitrary ratios of linear Rashba and Dresselhaus coupling in narrow wires. For wider wires, the spin relaxation rate is found to be…
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