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Weak localization, spin relaxation, and spin diffusion: Crossover between weak and strong Rashba coupling limits

机译:局域性弱,自旋弛豫和自旋扩散:弱Rashba和强Rashba耦合极限之间的交叉

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摘要

Disorder scattering and spin-orbit coupling are together responsible for the diffusion and relaxation of spin density in time-reversal invariant systems. We study spin relaxation and diffusion in a two-dimensional electron gas with Rashba spin-orbit coupling and spin-independent disorder, focusing on the role of Rashba spin-orbit coupling in transport. Spin-orbit coupling contributes to spin relaxation, transforming the quantum interference contribution to conductivity from a negative weak localization (WL) correction to a positive weak antilocalization (WAL) correction. The importance of spin channel mixing in transport is largest in the regime where the Bloch state energy uncertainty h/τ and the Rashba spin-orbit splitting Δ_(so) are comparable. We find that as a consequence of this spin channel mixing, the WL-WAL crossover is nonmonotonic in this intermediate regime, which can be related to recent experimental studies of transport at two-dimensional oxide interfaces.
机译:无序散射和自旋轨道耦合共同负责时间逆不变系统中自旋密度的扩散和松弛。我们研究具有Rashba自旋轨道耦合和自旋无关性的二维电子气中的自旋弛豫和扩散,重点是Rashba自旋轨道耦合在运输中的作用。自旋轨道耦合有助于自旋弛豫,将对电导率的量子干涉贡献从负的弱定位(WL)校正转变为正的反定位(WAL)校正。自旋通道混合在运输中的重要性在Bloch状态能量不确定性h /τ和Rashba自旋轨道分裂Δ_(so)可比的状态下最大。我们发现,作为这种自旋通道混合的结果,WL-WAL跨界在这种中间状态下是非单调的,这可能与最近在二维氧化物界面上进行传输的实验研究有关。

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