Spin-orbit torques in magnetic bilayers (Presentation Recording)

P. Haney, M. Stiles, Hyun-Woo Lee, A. Manchon, Kyung-Jin Lee
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Abstract

Spintronics aims to utilize the coupling between charge transport and magnetic dynamics to develop improved and novel memory and logic devices. Future progress in spintronics may be enabled by exploiting the spin-orbit coupling present at the interface between thin film ferromagnets and heavy metals. In these systems, applying an in-plane electrical current can induce magnetic dynamics in single domain ferromagnets, or can induce rapid motion of domain wall magnetic textures. There are multiple effects responsible for these dynamics. They include spin-orbit torques and a chiral exchange interaction (the Dzyaloshinskii-Moriya interaction) in the ferromagnet. Both effects arise from the combination of ferromagnetism and spin-orbit coupling present at the interface. There is additionally a torque from the spin current flux impinging on the ferromagnet, arising from the spin hall effect in the heavy metal. Using first principles calculations, we identify spin-orbit hybridization at the ferromagnet-heavy metal interface as central to the spin-orbit torques present in Co-Pt bilayers. We additionally propose that the transverse spin current (from the spin hall effect) is locally enhanced over its bulk value due to scattering at an interface which is oriented normal to the charge current direction.
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磁双层中的自旋轨道力矩(演示记录)
自旋电子学旨在利用电荷输运和磁动力学之间的耦合来开发改进的和新颖的存储和逻辑器件。利用薄膜铁磁体和重金属之间的界面上存在的自旋轨道耦合,可能会使自旋电子学的未来发展成为可能。在这些系统中,施加平面内电流可以诱导单畴铁磁体的磁动力学,或者可以诱导畴壁磁织构的快速运动。这些动态有多种影响。它们包括铁磁体中的自旋-轨道力矩和手性交换相互作用(Dzyaloshinskii-Moriya相互作用)。这两种效应都是由界面上存在的铁磁性和自旋轨道耦合共同作用引起的。此外,由于重金属中的自旋霍尔效应,撞击铁磁体的自旋电流通量还会产生一个转矩。利用第一性原理计算,我们确定了铁磁-重金属界面的自旋轨道杂化是Co-Pt双层中存在的自旋轨道力矩的中心。我们还提出横向自旋电流(来自自旋霍尔效应)由于在与电荷电流方向垂直的界面上散射而局部增强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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