Reliable modeling of weak antilocalization for accurate spin-lifetime extraction
Michael Kammermeier, Takahito Saito, Daisuke Iizasa, Ulrich Z\"ulicke,, Makoto Kohda

TL;DR
This paper critically evaluates models for magneto-conductivity in 2DEGs with spin-orbit coupling, highlighting the limitations of quasi-classical approximations and proposing a generalized formula for accurate spin-lifetime extraction.
Contribution
It introduces a generalized closed-form expression for magneto-conductivity correction that accounts for Landau quantization and is valid near the persistent spin helix regime.
Findings
Quasi-classical approximation differs significantly from Landau-quantized models.
Adding Euler-MacLaurin corrections improves quasi-classical model accuracy.
Derived formula validated against numerical diagonalization and Monte Carlo simulations.
Abstract
We examine models for the magneto-conductivity correction in 2DEGs with both Rashba and Dresselhaus spin-orbit coupling (SOC) for their applicability to experimental data fitting. In particular, we compare the Landau-quantized Cooperon approach, which is mostly only numerically treatable, and the quasi-classical approximation that was recently employed to obtain an explicit solution for arbitrary Rashba and Dresselhaus SOC [PRL 112, 156601 (2019)]. It is found that the quasi-classical approximation yields significantly different results even to lowest order in the magnetic field and appears unsuitable for reliable parameter fitting. The discrepancy emerges when a sum over Landau levels is replaced by an integral over wave vectors. Substantial improvement is achieved by supplementing the quasi-classical model with the first two corrections given by the Euler-MacLaurin formula.…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Quantum and electron transport phenomena · Magnetic properties of thin films
