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Spin-relaxation time in materials with broken inversion symmetry and large spin-orbit coupling

机译:具有反对称对称性和自旋轨道耦合大的材料的自旋弛豫时间

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摘要

We study the spin-relaxation time in materials where a large spin-orbit coupling (SOC) is present which breaks the spatial inversion symmetry. Such a spin-orbit coupling is realized in zincblende structures and heterostructures with a transversal electric field and the spin relaxation is usually described by the so-called D'yakonov-Perel' (DP) mechanism. We combine a Monte Carlo method and diagrammatic calculation based approaches in our study; the former tracks the time evolution of electron spins in a quasiparticle dynamics simulation in the presence of the built-in spin-orbit magnetic fields and the latter builds on the spin-diffusion propagator by Burkov and Balents. Remarkably, we find a parameter free quantitative agreement between the two approaches and it also returns the conventional result of the DP mechanism in the appropriate limit. We discuss the full phase space of spin relaxation as a function of SOC strength, its distribution, and the magnitude of the momentum relaxation rate. This allows us to identify two novel spin-relaxation regimes; where spin relaxation is strongly non-exponential and the spin relaxation equals the momentum relaxation. A compelling analogy between the spin-relaxation theory and the NMR motional narrowing is highlighted.
机译:我们研究了存在自旋轨道耦合(SOC)且破坏空间反转对称性的材料中的自旋弛豫时间。这样的自旋轨道耦合在具有横向电场的闪锌矿结构和异质结构中实现,并且自旋弛豫通常通过所谓的“ D'yakonov-Perel”(DP)机制来描述。我们在研究中结合了蒙特卡罗方法和基于图解计算的方法。前者在存在内置自旋轨道磁场的情况下,在准粒子动力学模拟中跟踪电子自旋的时间演化,而后者则基于Burkov和Balents的自旋扩散传播器。值得注意的是,我们找到了两种方法之间的无参数定量协议,并且还以适当的限制返回了DP机制的常规结果。我们讨论了自旋弛豫的完整相空间与SOC强度,其分布以及动量弛豫率的大小的关系。这使我们能够确定两种新颖的自旋松弛方案;其中自旋弛豫是强烈非指数的,而自旋弛豫等于动量弛豫。自旋松弛理论与NMR运动变窄之间的一个令人信服的类比突出了。

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