Floquet Spin Splitting and Spin Generation in Antiferromagnets

Fuente: arXiv
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Autori principali: Li, Bo, Shao, Ding-Fu, Kovalev, Alexey A.
Natura: Preprint
Pubblicazione: 2025
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author Li, Bo
Shao, Ding-Fu
Kovalev, Alexey A.
author_facet Li, Bo
Shao, Ding-Fu
Kovalev, Alexey A.
contents In antiferromagnetic spintronics, accessing the spin degree of freedom is essential for generating spin currents and manipulating magnetic order, which generally requires lifting spin degeneracy. This is typically achieved through relativistic spin-orbit coupling or non-relativistic spin splitting in altermagnets. Here, we propose an alternative approach: a dynamical spin splitting induced by an optical field in antiferromagnets. By coupling the driven system to a thermal bath, we demonstrate the emergence of steady-state pure spin currents, as well as linear-response longitudinal and transverse spin currents. Crucially, thermal bath engineering enables a nonrelativistic Edelstein effect--the generation of a net spin accumulation--without relying on spin-orbit coupling. Our results provide a broadly applicable and experimentally tunable route to control spins in antiferromagnets, offering new opportunities for spin generation and manipulation in antiferromagnetic spintronics.
format Preprint
id arxiv_https___arxiv_org_abs_2507_22884
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Floquet Spin Splitting and Spin Generation in Antiferromagnets
Li, Bo
Shao, Ding-Fu
Kovalev, Alexey A.
Mesoscale and Nanoscale Physics
In antiferromagnetic spintronics, accessing the spin degree of freedom is essential for generating spin currents and manipulating magnetic order, which generally requires lifting spin degeneracy. This is typically achieved through relativistic spin-orbit coupling or non-relativistic spin splitting in altermagnets. Here, we propose an alternative approach: a dynamical spin splitting induced by an optical field in antiferromagnets. By coupling the driven system to a thermal bath, we demonstrate the emergence of steady-state pure spin currents, as well as linear-response longitudinal and transverse spin currents. Crucially, thermal bath engineering enables a nonrelativistic Edelstein effect--the generation of a net spin accumulation--without relying on spin-orbit coupling. Our results provide a broadly applicable and experimentally tunable route to control spins in antiferromagnets, offering new opportunities for spin generation and manipulation in antiferromagnetic spintronics.
title Floquet Spin Splitting and Spin Generation in Antiferromagnets
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2507.22884