APS Logo

Intrinsic spin-orbit torque mechanism for deterministic all-electric switching of noncollinear antiferromagnets

ORAL

Abstract

Using a pure electric current to control kagome noncollinear antiferromagnets is promising in information storage and processing, but a full description is still lacking, in particular, on intrinsic (i.e., no external magnetic fields or external spin currents) spin-orbit torques. In this work, we self-consistently describe the relations among the electronic structure, magnetic structure, spin accumulations, and intrinsic spin-orbit torques in the magnetic dynamics of a noncollinear antiferromagnet driven by a pure electric current. Our calculation can yield a critical current density comparable with those in the experiments, when considering the boost from the out-of-plane magnetic dynamics induced by the current-driven spin accumulation on individual magnetic moments. We stress the parity symmetry breaking in deterministic switching among magnetic structures. This work will be helpful for future applications of noncollinear antiferromagnets.

Publication: [1] Yiyuan Chen, Z. Z. Du, Hai-Zhou Lu, and X. C. Xie, Intrinsic spin-orbit torque mechanism for deterministic all-electric switching<br>of noncollinear antiferromagnets, Phys. Rev. B 109, L121115 (2024)<br>[2] Y. Deng, X. Liu, Y. Chen, Z. Du, N. Jiang, C. Shen, E. Zhang, H. Zheng, H.-Z. Lu, and K. Wang, All-electrical switching of a topological noncollinear antiferromagnet at room temperature, Natl. Sci. Rev. 10, nwac154 (2023)

Presenters

  • Yiyuan Chen

    Southern University of Science and Technology

Authors

  • Yiyuan Chen

    Southern University of Science and Technology