Theory of the nonlinear Rashba-Edelstein effect
Giovanni Vignale, I. V. Tokatly

TL;DR
This paper develops an exact analytical theory for the nonlinear Rashba-Edelstein effect, revealing how strong electric fields alter spin polarization dynamics and predicting an inverse effect driven by magnetic fields, extending understanding beyond linear response.
Contribution
It provides the first exact analytical solution for the nonlinear regime of the Rashba-Edelstein effect, including the inverse effect and generalized Onsager relations.
Findings
Spin polarization saturates at maximum value in the adiabatic regime.
Strong non-adiabatic effects suppress spin polarization.
Inverse Edelstein effect driven by a linearly growing magnetic field.
Abstract
It is well known that a current driven through a two-dimensional electron gas with Rashba spin-orbit coupling induces a spin polarization in the perpendicular direction (Edelstein effect). This phenomenon has been extensively studied in the linear response regime, i.e., when the average drift velocity of the electrons is a small fraction of the Fermi velocity. Here we investigate the phenomenon in the nonlinear regime, meaning that the average drift velocity is comparable to, or exceeds the Fermi velocity. This regime is realized when the electric field is very large, or when electron-impurity scattering is very weak. The quantum kinetic equation for the density matrix of noninteracting electrons is exactly and analytically solvable, reducing to a problem of spin dynamics for "unpaired" electrons near the Fermi surface. The crucial parameter is , where is the…
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Taxonomy
TopicsAdvanced Mathematical Modeling in Engineering · Force Microscopy Techniques and Applications
