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Single-Atom Quantum Probes for Ultracold Gases Boosted by Nonequilibrium Spin Dynamics

机译:用于超纤维型自旋动力学的超级原子量子探头提升

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Quantum probes are atomic sized devices mapping information of their environment to quantum-mechanical states. By improving measurements and at the same time minimizing perturbation of the environment, they form a central asset for quantum technologies. We realize spin-based quantum probes by immersing individual Cs atoms into an ultracold Rb bath. Controlling inelastic spin-exchange processes between the probe and bath allows us to map motional and thermal information onto quantum-spin states. We show that the steady-state spin population is well suited for absolute thermometry, reducing temperature measurements to detection of quantum-spin distributions. Moreover, we find that the information gain per inelastic collision can be maximized by accessing the nonequilibrium spin dynamic. Keeping the motional degree of freedom thermalized, individual spin-exchange collisions yield information about the gas quantum by quantum. We find that the sensitivity of this nonequilibrium quantum probing effectively beats the steady-state Cramér-Rao limit by almost an order of magnitude, while reducing the perturbation of the bath to only three quanta of angular momentum. Our work paves the way for local probing of quantum systems at the Heisenberg limit, and moreover, for optimizing measurement strategies via control of nonequilibrium dynamics.
机译:量子探测器是原子大小的设备将其环境的信息映射到量子机械状态。通过改进测量,同时最小化环境扰动,它们形成了量子技术的中央资产。我们通过将单独的CS原子浸入Ultracold RB浴中来实现基于旋转的量子探针。控制探针和浴之间的无弹性自旋交换过程允许我们将运动和热信息映射到量子旋转状态。我们表明,稳态旋转群体非常适合绝对温度,降低温度测量以检测量子 - 旋转分布。此外,我们发现通过访问非QuibiRibrimb动态,可以最大化每个无弹性碰撞的信息增益。保持热化自由的动机,单独的自旋交换碰撞通过量子产生有关气量子的信息。我们发现,这种非Quilibirim探测的灵敏度有效地击败了稳态Cramér-Rao限制几乎是一个数量级,同时将浴的扰动降低到仅三个角动量的三个量子。我们的工作铺平了Heisenberg Limit局部探测量子系统的探讨,而且,通过控制非QuibiBriaM动力学来优化测量策略。

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