室温量子系统的自底向上方法

Bochao Wei, Chao Li, Ce Pei, Chandra Raman
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引用次数: 0

摘要

我们展示了一个关键的成分在自下而上的方法来构建复杂的量子物质使用热原子蒸汽。我们在没有激光冷却的情况下,分离并追踪非常缓慢运动的单个原子。无源滤波使我们能够仔细地选择其三维速度矢量的量级低于$\overline{v}/20$的原子,其中$\overline{v}$是系综的平均速度。利用光子相关技术,我们可以提取速度分布。我们还可以在$25\text{\ensuremath{-}}\textmu{}\mathrm{m}$视场内跟踪超过$1\phantom{\rule{4pt}{0ex}}\textmu{}\mathrm{s}$的缓慢移动的单个原子的轨迹,同时观察这些单个发射器的拉比振荡,对跟踪能力没有明显的限制。此外,我们还测量了单热原子的三阶相关函数。我们的研究结果通过自下而上的方法证明了热集成在量子存储器、成像和其他量子信息应用中的强大功能和可扩展性。
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Bottom-up approach to room-temperature quantum systems
We demonstrate a key ingredient in a bottom-up approach to building complex quantum matter using thermal atomic vapors. We isolate and track very slowly moving individual atoms without the aid of laser cooling. Passive filtering enables us to carefully select atoms whose three-dimensional velocity vector has a magnitude below $\overline{v}/20$, where $\overline{v}$ is the mean velocity of the ensemble. Using a photon correlation technique, we can extract the velocity distributions. We can also follow the trajectory of slowly moving single atoms for more than $1\phantom{\rule{4pt}{0ex}}\textmu{}\mathrm{s}$ within a $25\text{\ensuremath{-}}\textmu{}\mathrm{m}$ field of view, with no obvious limit to the tracking ability while simultaneously observing Rabi oscillations of these single emitters. In addition, we measure the third-order correlation function of single thermal atoms. Our results demonstrate the power and scalability of thermal ensembles for utilization in quantum memories, imaging, and other quantum information applications through bottom-up approaches.
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