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Spin current generation and relaxation in a quenched spin-orbit-coupled Bose-Einstein condensate

机译:自旋轨道耦合的玻色-爱因斯坦凝聚物中的自旋电流产生和弛豫

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摘要

Understanding the effects of spin-orbit coupling (SOC) and many-body interactions on spin transport is important in condensed matter physics and spintronics. This topic has been intensively studied for spin carriers such as electrons but barely explored for charge-neutral bosonic quasiparticles (including their condensates), which hold promises for coherent spin transport over macroscopic distances. Here, we explore the effects of synthetic SOC (induced by optical Raman coupling) and atomic interactions on the spin transport in an atomic Bose-Einstein condensate (BEC), where the spin-dipole mode (SDM, actuated by quenching the Raman coupling) of two interacting spin components constitutes an alternating spin current. We experimentally observe that SOC significantly enhances the SDM damping while reducing the thermalization (the reduction of the condensate fraction). We also observe generation of BEC collective excitations such as shape oscillations. Our theory reveals that the SOC-modified interference, immiscibility, and interaction between the spin components can play crucial roles in spin transport.
机译:了解自旋轨道耦合(SOC)和多体相互作用对自旋输运的影响在凝聚态物理和自旋电子学中很重要。已经对该主题对诸如电子之类的自旋载体进行了深入研究,但几乎没有针对电荷中性的玻色子准粒子(包括其凝聚物)进行探索,这为在宏观距离上实现相干自旋传输提供了希望。在这里,我们探讨了合成SOC(由光学拉曼耦合引起)和原子相互作用对原子Bose-Einstein凝聚物(BEC)中的自旋输运的影响,其中自旋偶极子模式(SDM,通过淬灭拉曼耦合来激活)两个相互作用的自旋分量中的一个构成交流自旋电流。我们通过实验观察到,SOC显着增强了SDM阻尼,同时降低了热化(冷凝水份的减少)。我们还观察到BEC集体激励(例如形状振荡)的产生。我们的理论表明,SOC修饰的干扰,互溶性以及自旋组件之间的相互作用可以在自旋运输中发挥关键作用。

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