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Identifying switching of antiferromagnets by spin-orbit torques

Martin Jourdan1,*, Jonathan Bläßer1, Guzmán Orero Gámez1, Sonka Reimers1, Lukas Odenbreit1, Miriam Fischer1, Yuran R. Niu2, Evangelos Golias2, Francesco Maccherozzi3 et al.

Armin Kleibert4, Hermann Stoll1,5, and Mathias Kläui1

  • *Contact author: Jourdan@uni-mainz.de

Phys. Rev. B 112, 104408 – Published 4 September, 2025

DOI: https://doi.org/10.1103/tjhp-rzcb

Abstract

Antiferromagnets are promising candidates for ultrafast spintronic applications, leveraging current-induced spin-orbit torques. However, experimentally distinguishing between different switching mechanisms of the staggered magnetization (Néel vector) driven by current pulses remains a challenge. In an exemplary study of the collinear antiferromagnetic compound Mn2Au, we demonstrate that slower thermomagnetoelastic effects predominantly govern switching over a wide parameter range. In the regime of short current pulses in the nanosecond range, however, we observe fully Néel spin-orbit torque driven switching. We show that this ultrafast mechanism enables the complete directional alignment of the Néel vector by current pulses in device structures.

Physics Subject Headings (PhySH)

synopsis

How to Switch an Antiferromagnet

Published 4 September, 2025

Two main mechanisms can flip the orientation of antiferromagnetic domains. Researchers have determined when one prevails over the other.

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