Spin-orbit torque induced switching in a magnetic insulator thin film with perpendicular magnetic anisotropy

ORAL

Abstract

Spin-orbit torque (SOT) has been demonstrated to be efficient to manipulate the magnetization in heavy-metal/ferromagnetic metal (HM/FMM) heterostructures. In HM/magnetic insulator (MI) heterostructures, charge currents do not flow in MI, but pure spin currents generated by the spin Hall effect in HM can enter the MI layer to cause magnetization dynamics. Here we report SOT-induced magnetization switching in Tm$_{\mathrm{3}}$Fe$_{\mathrm{5}}$O$_{\mathrm{12}}$/Pt heterostructures, where Tm$_{\mathrm{3}}$Fe$_{\mathrm{5}}$O$_{\mathrm{12}}$ (TmIG) is a MI grown by pulsed laser deposition with perpendicular magnetic anisotropy. The anomalous Hall signal in Pt is used as a probe to detect the magnetization switching. Effective magnetic fields due to the damping-like and field-like torques are extracted using a harmonic Hall detection method. The experiments are carried out in heterostructures with different TmIG film thicknesses. Both the switching and harmonic measurements indicate a more efficient SOT generation in HM/MI than in HM/FMM heterostructures. Our comprehensive experimental study and detailed analysis will be presented.

*This work was supported as part of the SHINES, an Energy Frontier Research Center funded by the US Department of Energy, Office of Science, Basic Energy Sciences under Award No. SC0012670.

Authors

  • J. X. Li

    • Univ of California - Riverside
    • UC, Riverside, CA
  • Guoqiang Yu

    • UC, Los Angeles, CA
    • University of California, Los Angeles
  • C. Tang

    • University of California - Riverside
    • UC, Riverside, CA
  • K. L. Wang

    • Electrical Engineering Department, UCLA
    • UC, Los Angeles, CA
  • Jing Shi

    • Department of Physics and Astronomy, University of California, Riverside
    • UC, Riverside, CA
    • University of California - Riverside