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Observation of Ultrastrong Spin-Motion Coupling for Cold Atoms in Optical Microtraps

机译:超强自旋耦合对光学微阱中冷原子的观察

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摘要

We realize a mechanical analogue of the Dicke model, achieved by coupling the spin of individual neutral atoms to their quantized motion in an optical trapping potential. The atomic spin states play the role of the electronic states of the atomic ensemble considered in the Dicke model, and the in-trap motional states of the atoms correspond to the states of the electromagnetic field mode. The coupling between spin and motion is induced by an inherent polarization gradient of the trapping light fields, which leads to a spatially varying vector light shift. We experimentally show that our system reaches the ultrastrong coupling regime; i.e., we obtain a coupling strength that is a significant fraction of the trap frequency. Moreover, with the help of an additional light field, we demonstrate the in situ tuning of the coupling strength. Beyond its fundamental interest, the demonstrated one-to-one mapping between the physics of optically trapped cold atoms and the Dicke model paves the way for implementing protocols and applications that exploit extreme coupling strengths.
机译:我们实现了迪克模型的机械模拟,这是通过将单个中性原子的自旋耦合到它们在光俘获势中的量化运动而实现的。原子自旋态起着Dicke模型中考虑的原子团电子态的作用,并且原子的陷阱内运动态对应于电磁场模式的态。自旋和运动之间的耦合是由捕获光场的固有偏振梯度引起的,这导致空间变化的矢量光偏移。我们通过实验表明,我们的系统达到了超强耦合状态;即,我们获得的耦合强度是陷波频率的很大一部分。此外,借助附加的光场,我们演示了耦合强度的原位调整。除了其基本兴趣之外,已证明的光学捕获的冷原子的物理性质与Dicke模型之间的一对一映射为实现利用极端耦合强度的协议和应用程序铺平了道路。

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  • 来源
    《Physical review letters》 |2018年第25期|253603.1-253603.6|共6页
  • 作者单位

    TU Wien, Atominst, Vienna Ctr Quantum Sci & Technol, Stad Allee 2, A-1020 Vienna, Austria;

    TU Wien, Atominst, Vienna Ctr Quantum Sci & Technol, Stad Allee 2, A-1020 Vienna, Austria;

    TU Wien, Atominst, Vienna Ctr Quantum Sci & Technol, Stad Allee 2, A-1020 Vienna, Austria;

    TU Wien, Atominst, Vienna Ctr Quantum Sci & Technol, Stad Allee 2, A-1020 Vienna, Austria|Humboldt Univ, Dept Phys, D-10099 Berlin, Germany;

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