Spin-torque ferromagnetic resonance based on current-induced impedance

ORAL

Abstract

Spin-torque ferromagnetic resonance (ST-FMR) has been widely used for measuring damping-like spin–orbit torques in magnetic bilayers. Typically, the ratio between the damping-like and field-like spin–orbit torques are extrapolated based on the ferromagnetic resonance line shapes. However, when the field-like spin–orbit torque is unknown, the line shape analysis may lead to errors in extrapolating the damping-like spin–orbit torque. Here, we propose a modified version of the ST-FMR that allows extrapolation of both damping-like and field-like torques independently. By introducing an alternating current to the sample, the RF impedance is modulated, allowing detection via the reflected microwave. We show that the extrapolated field-like and damping-like torques in Py/Pt samples are consistent with the technique measuring current-induced linewidth and resonance field change but have much better signal-to-noise ratio. Our proposed method paves a way for more accurate measurement of spin–orbit torques.

*This work was supported by the JSPS visiting fellowship, the DU FRF grant, the NSF award (2047118), JSPS KAKENHI through Grant Nos. JP23KK0093, JP22H01936, JP22J12061, JP21H04562, and JP20H05665, the Iketani Science and Technology Foundation, Collaborative Research Program of the Institute for Chemical Research, Kyoto University. We would also like to thank Professor Bo Yang for help with RF components.

Publication: Spin-torque ferromagnetic resonance based on current-induced impedance, Y. Kobayashi et al., Appl. Phys. Lett. 125, 022405 (2024)

Presenters

  • Xin Fan

    • University of Denver

Authors

  • Xin Fan

    • University of Denver
  • Yuta Kobayashi

    • Kyoto University
  • Tomoya Itoh

    • Kyoto University
  • Ryusuke Hisatomi

    • Kyoto University
  • Takahiro Moriyama

    • Nagoya University
  • Yoichi Shiota

    • Kyoto University
  • Teruo Ono

    • Kyoto University