Tunable Odd-Parity Spin Splittings in Altermagnets
Abstract
Momentum-dependent spin splitting and its relation to inversion () and time-reversal () symmetries are central to nonrelativistic spintronics. Representative examples include collinear altermagnets with and non-collinear odd-parity magnets with . In this work, we develop a theoretical framework to induce odd-parity spin splittings in the more abundant collinear altermagnets through two mechanisms: driving by a two-color linearly polarized light field or coupling to a -odd loop-current order. Properly phase-locked two-color driving induces a static order, symmetry-equivalent to a translationally invariant -odd loop-current order. Coupling this order to an altermagnet produces a controllable mixed-parity spin texture, opening new avenues for the electrical and optical manipulation of spin-polarized currents in spintronics applications. The same mechanism applied to a collinear -symmetric magnet induces a distinct state with a nonrelativistic dissipationless anomalous spin Hall conductivity. We present group-theory and microscopic Floquet theory to highlight the emergent responses.
Cite
@article{arxiv.2605.03026,
title = {Tunable Odd-Parity Spin Splittings in Altermagnets},
author = {Yue Yu},
journal= {arXiv preprint arXiv:2605.03026},
year = {2026}
}