Resonant Edelstein and inverse-Edelstein effects, charge-to-spin conversion, and spin pumping from chiral-spin modes
Mojdeh Saleh, Abhishek Kumar, Dmitrii L. Maslov, Saurabh Maiti

TL;DR
This paper investigates how electron interactions influence resonances in Edelstein effects and spin pumping in systems with spin-orbit coupling, revealing potential for enhanced spintronics applications.
Contribution
It provides a detailed analysis of electron correlation effects on chiral-spin mode resonances in 2D electron gases and Dirac systems, highlighting their role in charge-to-spin conversion.
Findings
Resonances occur at frequencies of chiral-spin collective modes.
Electron correlation splits in-plane modes into two in multi-valley systems.
Resonant enhancement of charge-to-spin conversion is achievable using chiral-spin modes.
Abstract
Spin-orbit coupling in systems with broken inversion symmetry gives rise to the Edelstein effect, which is the spin polarization induced by an electric field or current, and the inverse-Edelstein effect (also known as the spin-galvanic effect), which is the electric current induced by an oscillatory magnetic field or spin polarization. At the same time, an interplay between spin-orbit coupling and electron-electron interaction leads to a special type of collective excitations -- chiral-spin modes -- which are oscillations of spin polarization in the absence of a magnetic field. As a result, both Edelstein and inverse-Edelstein effects exhibit resonances at the frequencies of chiral-spin collective modes. Here, we present a detailed study of the effect of electron correlation on the resonances in Edelstein and inverse-Edelstein effects in a single-valley two-dimensional electron gas and…
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