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    Nonequilibrium effects in spin-torque oscillators

    Pieter M. Gunnink1,*, Tim Ludwig2, Alexander Shnirman3,4, and Rembert A. Duine5,6

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

    Phys. Rev. B 111, 214425 – Published 16 June, 2025

    DOI: https://doi.org/10.1103/cm5p-w91v

    Abstract

    One of the cornerstones of spintronics is the application of a spin-transfer torque to a nanomagnet, driving the magnetization of the nanomagnet into a steady-state precession and realizing a spin-torque oscillator. Such a steady state, sustained by a balance between driving and dissipation, could be a textbook example of a nonequilibrium situation. Nevertheless, most theoretical descriptions of spin-torque oscillators simply assume local equilibrium. Here, based on a simple model, we investigate the relevance of nonequilibrium effects in spin-torque oscillators. We use a nonequilibrium Keldysh description, which allows us to treat the effects of spin relaxation, and find that, in the absence of spin relaxation, persistent precessions of the magnetization are not allowed, when magnetic anisotropies are absent. However, introducing spin relaxation enables persistent precessions, where the strength of spin relaxation has both quantitative and qualitative effects on the magnetization dynamics. In the presence of magnetic anisotropy, we find that persistent precessions are allowed even when spin relaxation is absent, but spin relaxation causes a nonlinear relation between the oscillator power and the applied voltage bias. Finally, we consider an alternative spin relaxation mechanism and study the resulting magnetization precessions, highlighting the importance of understanding the exact nature of the relaxation in nanomagnets.

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