Large spin-orbit torque in a-plane α-FeO/Pt bilayers

ORAL

Abstract

Realization of efficient spin-orbit torque switching of the Néel vector in insulating antiferromagnets is a challenge, often complicated by spurious effects. Quantifying the spin-orbit torques in antiferromagnet/heavy metal heterostructures is an important first step towards this goal. Here, we employ magneto-optic techniques to study damping-like spin-orbit torque (DL-SOT) in a-plane α-FeO (hematite) with a Pt spin-orbit overlayer. We find that the DL-SOT efficiency is two orders of magnitude larger than reported in c- and r-plane hematite/Pt using harmonic Hall techniques. The large magnitude of DL-SOT is supported by direct imaging of current-induced motion of antiferromagnetic domains that happens at moderate current densities. Our study introduces a new method for quantifying spin-orbit torque in antiferromagnets with a small canted moment and identifies a-plane α-FeO as a promising candidate to realize efficient SOT switching.

*The work was supported by the Center for Emergent Materials, an NSF MRSEC, under award number DMR-2011876, the Department of Energy, Office of Science, Basic Energy Sciences, under Grant No. DE-SC0001304, and the Air Force Office of Scientific Research under Grant No. FA9550-19-1-0307.

Publication: I. Lyalin et al, arXiv preprint arXiv:2407.07731 (2024)

Presenters

  • Roland K Kawakami

    • Ohio State University

Authors

  • Roland K Kawakami

    • Ohio State University
  • Igor Lyalin

    • Ohio State University
  • Hantao Zhang

    • University of California, Riverside
  • Justin J Michel

    • Ohio State University
  • Fengyuan Yang

    • Ohio State University
  • Ran Cheng

    • University of California, Riverside
  • Daniel Russell

    • Ohio State University