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Microscopic origin of spin-orbit torque in ferromagnetic heterostructures: A first-principles approach

机译:铁磁异质结构中的旋转轨道扭矩的显微镜起源:一致的方法

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We present an ab initio based theoretical framework which elucidates the origin of the spin-orbit torque (SOT) in normal-metal (NM)/ferromagnet (FM) heterostructures. The SOT is decomposed into two contributions, namely, spin-Hall and the spin-orbital components. We find that (i) the fieldlike (FL) SOT is dominated by the spin-orbital component and (ii) both components contribute to the dampinglike (DL) torque with comparable magnitude in the limit of thick Pt film. The contribution of the spin-orbital component to the DL-SOT is present only for NMs with strong SOC coupling strength. We demonstrate that the FL-SOT can be expressed in terms of the nonequilibrium spin-resolved orbital moment accumulation. The calculations reveal that the experimentally reported oxygen-induced sign reversal of the FL-SOT in Pt/Co bilayers is due to the significant reduction of the majority-spin orbital moment accumulation on the interfacial NM atoms.
机译:我们提出了基于AB初始的理论框架,其阐明了常金属(NM)/铁磁性(FM)异质结构中的旋转轨道扭矩(SOT)的起源。 SOT分解成两种贡献,即旋转厅和旋转轨道部件。 我们发现(i)现场滑轨(氟)SOT由旋转轨道部件和(ii)两种组分在厚PT膜的极限下具有相当的幅度有助于抑制(DL)扭矩。 旋转轨道组分对DL-SOT的贡献仅适用于具有强大SOC耦合强度的NMS。 我们证明了FL-SOT可以以非QuibiBribrium分辨的轨道矩层积累表达。 该计算表明,Pt / Co双层的实验报告的氧诱导的氧诱导的载迹符号反转是由于界面NM原子上的大多数旋转轨道力矩积累的显着降低了。

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