Spin-torque-driven ferromagnetic resonance in a nonlinear regime

ORAL

Abstract

Spin-torque-driven ferromagnetic resonance (ST-FMR) is a quantitative tool for studying spin-transfer interactions in nanojunctions. Using this method we have studied Co/Cu/CoNi spin valves, in which the CoNi synthetic free layer has perpendicular magnetic anisotropy. Perpendicular field swept resonance lines were measured under a large amplitude GHz current excitation, which drove ST-FMR into a nonlinear regime and produced a large angle precession of the free layer magnetization. With increasing rf power, the resonance lines deviate from a Lorentzian shape and became asymmetric, with a lower resonance field and a larger linewidth. A non-hysteretic step jump in ST-FMR voltage signal was also observed at high powers. The comparison of the experimental results to the foldover and the nonlinear damping theories will be presented.

*This research was supported by NSF-DMR-0706322.

Authors

  • Wenyu Chen

    • Dept. of Physics, NYU
  • Gregoire de Loubens

    • Dept. of Physics, NYU
    • SPEC, CEA Saclay
    • Department of Physics, New York University
  • J-M. L. Beaujour

    • New York University
    • Dept. of Physics, NYU
  • J. Z. Sun

    • IBM T. J. Watson Research Center
    • IBM T.J. Watson Research Center
  • A. D. Kent

    • Dept. of Physics, NYU