Rashba系统中Berry曲率在自旋电流产生中的作用

Priyadarshini Kapri, B. Dey, T. Ghosh
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引用次数: 6

摘要

利用包含异常速度的修正自旋电流算子,研究了具有Zeeman分裂的二维Rashba自旋轨道耦合系统和三维非中心对称金属中的背景(平衡)、线性和非线性自旋电流。线性自旋霍尔电流是由贝里曲率引起的载流子速度异常引起的。非线性自旋电流是由带速度和/或异常速度引起的。对于二维Rashba系统,背景自旋电流在高费米能量时达到饱和(与塞曼耦合无关),线性自旋电流在塞曼间隙处呈现平稳状态,非线性自旋电流在间隙边缘处达到峰值。非线性自旋电流峰值的大小随着塞曼相互作用强度的增大而增大。线性自旋电流在平面外极化,而非线性自旋电流在平面内极化。我们观察到沿传播方向具有自旋极化的纯反常非线性自旋电流。在三维非中心对称金属中,背景自旋电流和线性自旋电流是费米能量的单调递增函数,而非线性自旋电流是费米能量的非单调变化函数,与Berry曲率无关。这些发现可能为控制Rashba自旋轨道耦合系统中的自旋电流提供有用的信息。
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Role of Berry curvature in the generation of spin currents in Rashba systems
We study the background (equilibrium), linear and nonlinear spin currents in 2D Rashba spin-orbit coupled systems with Zeeman splitting and in 3D noncentrosymmetric metals using modified spin current operator by inclusion of the anomalous velocity. The linear spin Hall current arises due to the anomalous velocity of charge carriers induced by the Berry curvature. The nonlinear spin current occurs due to the band velocity and/or the anomalous velocity. For 2D Rashba systems, the background spin current saturates at high Fermi energy (independent of the Zeeman coupling), linear spin current exhibits a plateau at the Zeeman gap and nonlinear spin currents are peaked at the gap edges. The magnitude of the nonlinear spin current peaks enhances with the strength of Zeeman interaction. The linear spin current is polarized out of plane, while the nonlinear ones are polarized in-plane. We witness pure anomalous nonlinear spin current with spin polarization along the direction of propagation. In 3D noncentrosymmetric metals, background and linear spin currents are monotonically increasing functions of Fermi energy, while nonlinear spin currents vary non-monotonically as a function of Fermi energy and are independent of the Berry curvature. These findings may provide useful information to manipulate spin currents in Rashba spin-orbit coupled systems.
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