Nonrelativistic Spin-Momentum Coupling in Antiferromagnetic Twisted Bilayers

Ran He, Dan Wang, Nannan Luo, Jiang Zeng, Ke-Qiu Chen, and Li-Ming Tang
Phys. Rev. Lett. 130, 046401 – Published 25 January 2023
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Abstract

Spin-momentum coupling, which depends strongly on the relativistic effect of heavy elements in solids, is the basis of many phenomena in spintronics. In this Letter, we theoretically predict nonrelativistic spin-momentum coupling in two-dimensional materials. By proposing magnetic symmetry requirements for spin splitting in two-dimensional systems, we find that a simple twisting operation can realize nonrelativistic spin splitting in antiferromagnetic bilayers. Through first-principles calculations, we demonstrate that momentum-dependent spin splitting exists extensively in antiferromagnetic twisted bilayers with different crystal structures and twist angles. The size of the spin splitting caused by twisting is of the same order of magnitude as that arising from spin-orbit coupling. In particular, a transverse spin current with an extremely high charge-spin conversion ratio can be generated in twisted structures under an external electric field. The findings demonstrate the potential for achieving electrically controlled magnetism in materials without spin-orbit coupling.

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  • Received 26 April 2022
  • Revised 1 June 2022
  • Accepted 5 January 2023

DOI:https://doi.org/10.1103/PhysRevLett.130.046401

© 2023 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Ran He1, Dan Wang2, Nannan Luo1, Jiang Zeng1, Ke-Qiu Chen1, and Li-Ming Tang1,*

  • 1Department of Applied Physics, School of Physics and Electronics, Hunan University, Changsha 410082, China
  • 2Institute of Mathematics and Physics, Central South University of Forestry and Technology, Changsha 410018, China

  • *lmtang@semi.ac.cn

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Issue

Vol. 130, Iss. 4 — 27 January 2023

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