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  • Letter

Observation of self-induced spin-orbit torques in Ni-Fe layers with a vertical gradient of magnetization

Y. Hibino*, T. Taniguchi, K. Yakushiji, H. Kubota, and S. Yuasa

  • Research Center for Emerging Computational Technologies (RCECT), National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki 305-8568, Japan

  • *y-hibino@aist.go.jp

Phys. Rev. B 109, L180409 – Published 20 May, 2024

DOI: https://doi.org/10.1103/PhysRevB.109.L180409

Abstract

Single ferromagnetic material generates transverse spin currents via in-plane charge current application and can exert spin-orbit torques (SOTs) on its magnetization, namely, self-induced SOTs, when the inversion symmetry in the bulk and/or interface is broken. In this Letter, we experimentally demonstrate that introducing a vertical gradient of magnetization within a ferromagnet is an effective way to generate self-induced SOTs. Self-induced SOTs in Ni-Fe alloys with a magnetization gradient are studied using spin-torque ferromagnetic resonance. It is found that the gradient direction of magnetization in the Ni-Fe layer can control not only the magnitude of the SOTs but even the sign of the torques. We propose a model to analyze self-induced SOTs and reveal that the asymmetric SOT profiles within a ferromagnet due to spatial variation of the magnetic moment play a dominant role in generating efficient self-induced SOTs. Our findings provide an alternative perspective on understanding the mechanism of generating self-induced SOTs and how to enhance their torque efficiency without the use of heavy metal elements.

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