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Dynamical formation and active control of persistent spin helices in Ⅲ-Ⅴ and Ⅱ-Ⅵ quantum wells

机译:Ⅲ-Ⅴ和Ⅱ-Ⅵ量子阱中持续自旋螺旋的动力学形成和主动控制

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This review article summarizes recent developments related to the dynamical formation of persistent spin helices in GaAs- and CdTe-based heterostructures. We start with fundamental aspects of spin-orbit interaction in quantum wells, in particular the Dresselhaus and Rashba terms and their relation to the bulk and structural inversion asymmetries, respectively. In the regime of balanced interactions, their combined impact gives rise to the formation of the persistent spin helix, i.e., a regime where a unidirectional spin grating with enhanced coherence time is established. The experimental scheme relies on ultrafast Kerr microscopy and permits to excite the spin polarization and detect it with a simultaneous spatial and temporal resolution of micrometers and picoseconds, respectively. For a microscopic understanding and a description of the results, kinetic theory of spatio-temporal spin dynamics of two-dimensional electrons is presented. In addition, Monte Carlo simulations of the spin distribution function are performed. Based on these concepts we discuss three areas with recent advances in the field of spin helices. (i) Anisotropic spin transport and spin helix dynamics in a modulation-doped GaAs quantum well is analyzed. It is observed that application of an out-of-plane electric field changes spin-orbit interaction through the Rashba component and the cubic Dresselhaus term. Remarkably, a weak in-plane electric field substantially increases spin diffusion and also affects the spin helix wavelength. (ii) In-plane magnetic fields applied in two perpendicular orientations allow for the extraction of the individual spin-orbit coupling parameters. (iii) Finally, we explore the influence of optical doping on the spin helix in a CdTe quantum well. Most importantly, a non-uniform spatio-temporal precession pattern is observed. The kinetic theory of spin diffusion allows us to model this finding by incorporating a dependence on the photo-carrier density into the Rashba and the Dresselhaus parameters.
机译:这篇综述文章总结了与基于GaAs和CdTe的异质结构中持久自旋螺旋的动态形成有关的最新进展。我们从量子阱中自旋轨道相互作用的基本方面入手,特别是Dresselhaus和Rashba项及其分别与体和结构反型不对称性的关系。在平衡相互作用的状态下,它们的综合影响导致形成持久的自旋螺旋,即建立具有增强相干时间的单向自旋光栅的状态。该实验方案依赖于超快Kerr显微镜,并可以激发自旋极化并以微米和皮秒的同时空间和时间分辨率进行检测。为了从微观上理解和描述结果,提出了二维电子时空自旋动力学的动力学理论。另外,执行自旋分布函数的蒙特卡洛模拟。基于这些概念,我们讨论了自旋螺旋领域中最新进展的三个领域。 (i)分析了调制掺杂的GaAs量子阱中的各向异性自旋输运和自旋螺旋动力学。可以观察到,施加平面外电场会改变通过Rashba分量和立方Dresselhaus项的自旋轨道相互作用。明显地,弱的平面内电场实质上增加了自旋扩散,并且还影响了自旋螺旋波长。 (ii)以两个垂直方向施加的面内磁场允许提取各个自旋轨道耦合参数。 (iii)最后,我们探讨了光学掺杂对CdTe量子阱中自旋螺旋的影响。最重要的是,观察到非均匀的时空进动模式。自旋扩散的动力学理论使我们能够通过将对光载流子密度的依赖性纳入Rashba和Dresselhaus参数来对这一发现进行建模。

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