Coulomb Drag in Altermagnets
Abstract
An altermagnet is a newly discovered antiferromagnet, characterized by unique anisotropic spin-split energy bands. It has attracted tremendous interest, because of its promising potential in information storage and processing. However, measuring the distinctive spin-split energy bands arising from altermagnetism remains a challenge. Here, we propose to employ the Coulomb drag to probe altermagnetism. In the Coulomb drag, an electric current in an active layer of electron gases can induce currents in a close but well-isolated passive layer, due to interlayer Coulomb interactions. We find that the Coulomb drag effects in altermagnets are highly sensitive to the orientation of the spin-split Fermi surfaces. As a result, transverse currents can be dragged in the passive layer, leading to Hall drag effects even in absence of spin-orbit coupling, a feature quite different from all previous systems. More importantly, all the drag effects of altermagnets have unique angle dependence, which can be measured in a multi-terminal setup to serve as signatures for altermagnetism. This proposal will inspire increasing explorations on emergent magnetism.
Keywords
Cite
@article{arxiv.2412.13927,
title = {Coulomb Drag in Altermagnets},
author = {Hao-Jie Lin and Song-Bo Zhang and Hai-Zhou Lu and X. C. Xie},
journal= {arXiv preprint arXiv:2412.13927},
year = {2025}
}
Comments
5+2 pages, 4 figures, 1 table