Theory of coupled spin-charge transport due to spin-orbit interaction in inhomogeneous two-dimensional electron liquids
K. Shen, R. Raimondi, G. Vignale

TL;DR
This paper develops a comprehensive quantum kinetic theory for coupled spin-charge transport in inhomogeneous two-dimensional electron liquids with spin-orbit interaction, unifying various effects like spin Hall, Edelstein, and spin-current swapping.
Contribution
It introduces a unified theoretical framework based on quantum kinetic equations that accounts for intrinsic and extrinsic spin-orbit couplings, applicable to diverse experimental conditions.
Findings
Derives drift-diffusion equations for diffusive regimes.
Analyzes inverse Edelstein and spin-current swapping effects.
Studies conversion of electron-hole density waves to spin density waves.
Abstract
Spin-orbit interactions in two-dimensional electron liquids are responsible for many interesting transport phenomena in which particle currents are converted to spin polarizations and spin currents and viceversa. Prime examples are the spin Hall effect, the Edelstein effect, and their inverses. By similar mechanisms it is also possible to partially convert an optically induced electron-hole density wave to a spin density wave and viceversa. In this paper we present a unified theoretical treatment of these effects based on quantum kinetic equations that include not only the intrinsic spin-orbit coupling from the band structure of the host material, but also the spin-orbit coupling due to an external electric field and a random impurity potential. The drift-diffusion equations we derive in the diffusive regime are applicable to a broad variety of experimental situations, both homogeneous…
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