The generation of spatially homogeneous spin polarization by application of electric current is a fundamental manifestation of symmetry-breaking spin--orbit coupling (SOC) in solid-state systems, which underpins a wide range of spintronic applications. Here, we show theoretically that twisted van der Waals heterostructures with proximity-induced SOC are candidates par excellence to realize exotic spin-charge transport phenomena due to their highly tunable momentum-space spin textures. Specifically, we predict that graphene/group-VI dichalcogenide bilayers support room temperature spin--current responses that can be manipulated via twist-angle control. For critical twist angles, the non-equilibrium spin density is pinned parallel to the applied current. This effect is robust against twist-angle disorder, with graphene/WSe2 possessing a critical angle (purely collinear response) of θc≃14∘. A simple electrical detection scheme to isolate the collinear Edelstein effect is proposed.
@article{arxiv.2205.08804,
title = {Twist Angle Controlled Collinear Edelstein Effect in van der Waals Heterostructures},
author = {Alessandro Veneri and David T. S. Perkins and Csaba G. Péterfalvi and Aires Ferreira},
journal= {arXiv preprint arXiv:2205.08804},
year = {2022}
}
Comments
12 pages, 6 figures, includes supplemental material. Accepted version in Physical Review B Letters