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Dynamical Spin Properties of Confined Fermi and Bose Systems in the Presence of Spin-Orbit Coupling

机译:自旋轨道耦合作用下受限费米系统和玻色系统的动态自旋性质

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摘要

Due to the recent experimental progress, tunable spin-orbit (SO) interactions represent ideal candidates for the control of polarization and dynamical spin properties in both quantum wells and cold atomic systems. A detailed understanding of spin properties in SO-coupled systems is thus a compelling prerequisite for possible novel applications or improvements in the context of spintronics and quantum computers. Here, we analyze the case of equal Rashba and Dresselhaus couplings in both homogeneous and laterally confined two-dimensional systems. Starting from the single-particle picture and subsequently introducing two-body interactions we observe that periodic spin fluctuations can be induced and maintained in the system. Through an analytical derivation, we show that the two-body interaction does not involve decoherence effects in the bosonic dimer, and, in the repulsive homogeneous Fermi gas, it may be even exploited in combination with the SO coupling to induce and tune standing currents. By further studying the effects of a harmonic lateral confinement-a particularly interesting case for Bose condensates-we evidence the possible appearance of nontrivial spin textures, whereas the further application of a small Zeeman-type interaction can be exploited to fine-tune the system's polarizability.
机译:由于最近的实验进展,可调谐自旋轨道(SO)相互作用是控制量子阱和冷原子系统中极化和动态自旋特性的理想候选者。因此,在自旋电子学和量子计算机的背景下,对SO耦合系统中自旋特性的详细理解是可能的新颖应用或改进的必要前提。在这里,我们分析了均质和侧向约束二维系统中相等的Rashba和Dresselhaus耦合的情况。从单粒子图片开始,随后引入两体相互作用,我们观察到可以在系统中诱发并保持周期性的自旋波动。通过分析推导,我们表明,两体相互作用在玻色二聚体中不涉及退相干效应,并且在排斥的均相费米气体中,甚至可以与SO耦合结合使用它来感应和调整驻流。通过进一步研究谐波横向约束的影响(Bose冷凝物的一种特别有趣的情况),我们证明了非平凡自旋织构的可能出现,而小的Zeeman型相互作用的进一步应用可以用来微调系统的极化率。

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