光子辅助隧道共振控制环形陷阱中自旋轨道耦合原子的自旋电流

Zhiqiang Li, Xiaoxiao Hu, Zhao-Yun Zeng, Ai-Xi Chen, Xiaobing Luo
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摘要

事实证明,周期性闪烁势是研究定向原子电流的有力工具。通过光子辅助隧道(共振)技术,我们将闪烁环形电势应用于自旋轨道(SO)耦合的非相互作用玻色-爱因斯坦凝聚态(BEC)系统,证明了可调谐交变(AC)自旋和原子质量流的产生,这种自旋和原子质量流的方向和强度都可以精确控制。这种现象背后的基本机制是闪烁电势提供了足够的光子来诱发拉比振荡,并为自旋和原子传输提供了动量传递。由于未受扰动的 SO 耦合 BEC 的单粒子基态取决于拉曼耦合强度,我们演示了如何在初始态处于单阱或双阱相的情况下产生和控制交流自旋电流。特别是,我们分析并解释了通过单光子共振过程产生无质量电流的净交流自旋电流的机制。研究表明,这些有趣的共振现象只能用简单的三电平模型来分析描述,这为自旋动力学的透明控制提供了可能。
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Photon-assisted tunneling resonantly controlling spin current of a spin-orbit-coupled atom in a toroidal trap
The periodic flashing potential has proven to be a powerful tool for investigating directed atomic currents. By applying the flashing ring-shaped potential to spin-orbit (SO) coupled, noninteracting Bose-Einstein condensate (BEC) systems, through photon-assisted tunneling (resonance) techniques, we demonstrate the generation of tunable alternating (AC) spin and atomic mass currents that can be precisely controlled in terms of direction and strength. The underlying mechanism behind this phenomenon is that the flashing potential supplies enough photons to induce Rabi oscillations and provides momentum transfer for spin and atomic transport. As the single-particle ground state of the unperturbed SO-coupled BEC depends on the Raman coupling strength, we demonstrate how to generate and control AC spin currents in the cases where the initial state resides in a single-well or double-well phase. In particular, we realize and explain the mechanism of generating a net AC spin current without mass current through single-photon resonance processes. It is shown that these interesting resonance phenomena can be analytically described only by the simple three-level model, which creates the possibility of transparent controls of spin dynamics.
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