Anomalous spin precession and spin Hall effect in semiconductor quantum wells
Xintao Bi, Peiru He, E. M. Hankiewicz, R. Winkler, Giovanni Vignale,, and Dimitrie Culcer

TL;DR
This paper investigates how anomalous spin precession, caused by spin-orbit interactions, influences the spin Hall effect in semiconductor quantum wells, revealing new contributions and conditions where they cancel or dominate.
Contribution
It identifies two novel contributions to the spin Hall effect from anomalous spin precession, which have not been previously considered in the literature.
Findings
Anomalous spin precession contributes to the SHE at first order in SO coupling.
For linear SO coupling, the new contributions cancel out.
In 2D hole systems, anomalous spin precession contributions vanish.
Abstract
Spin-orbit (SO) interactions give a spin-dependent correction r_so to the position operator, referred to as the anomalous position operator. We study the contributions of r_so to the spin-Hall effect (SHE) in quasi two-dimensional (2D) semiconductor quantum wells with strong band structure SO interactions that cause spin precession. The skew scattering and side-jump scattering terms in the SHE vanish, but we identify two additional terms in the SHE, due to r_so, which have not been considered in the literature so far. One term reflects the modification of the spin precession due to the action of the external electric field (the field drives the current in the quantum well), which produces, via r_so, an effective magnetic field perpendicular to the plane of the quantum well. The other term reflects a similar modification of the spin precession due to the action of the electric field…
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