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arXiv · 2607.27016

Anisotropic Spin Polarization and magnetic spin hall effect in Ferromagnets

Abstract

Spin-dependent transport in ferromagnets underpins the development of high-density spintronic memories. Spin-dependent transport in strong spin-orbit-coupled ferromagnets exhibits a significant anisotropy. Both the overall spin polarization during charge transport and the magnetic spin Hall conductivity are found to exhibit pronounced anisotropy when the magnetization is tilted away from the crystallographic easy axis or when the electric field is rotated relative to the crystal axes. These anisotropic responses originate primarily from spin-orbit coupling, which is identified as the key driver of the large anisotropy observed in ferromagnet. Furthermore, strain tunability of the magnetic spin Hall anisotropy is demonstrated, with tensile strain progressively enhancing the oscillatory amplitude of the spin Hall conductivity. These findings establish strong spin-orbit-coupled ferromagnets as a platform for anisotropic spin-current generation and field-free spintronic devices that exploit intrinsic material anisotropy for improved performance and energy efficiency.

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Jiabin Wang, Zhenhua Zhang, Wancheng Zhang, Jianxiong Zhao, Yong Liu, Rui Xiong, Zhihong Lu. 2026-07-29. Anisotropic Spin Polarization and magnetic spin hall effect in Ferromagnets. https://arxiv.org/abs/2607.27016

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