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Temperature determination of cold atoms based on single-atom countings

机译:基于单原子计数的冷原子温度测定

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Based on the real sense of the time-of-flight, we demonstrate an alternative method of measuring the temperature of cold atoms in magneto-optical traps (MOTs) using a high-finesse optical microcavity, which acts as a pointlike single-atom counter. A cloud of atoms trapped in magneto-optical traps is positioned about 5mm above the cavity, and the atoms fall freely down through the cavity. The temperature of the cold atoms in the MOT is determined by counting the exact arrival times of the single atoms. A theoretical model based on a ballistic expansion of a cloud of trapped atoms falling in the earth's gravitational field is used to fit the probability distribution of atom arrivals, and the fittings agree very well with the experimental results. This method could be used for systems with little room, where an extra probe beam is hard to involve, or with fewer atoms initially.
机译:基于飞行时间的真实意义,我们演示了一种替代方法,该方法使用高精细光学微腔来测量磁光阱(MOT)中的冷原子温度,该微腔用作点状单原子计数器。捕获在磁光阱中的原子云位于腔上方约5mm处,原子通过腔自由下落。通过计算单个原子的确切到达时间,可以确定MOT中冷原子的温度。基于落入地球引力场中的被捕获原子云的弹道扩展的理论模型用于拟合原子到达的概率分布,并且拟合与实验结果非常吻合。此方法可用于空间较小,难以包含额外探测光束或初始原子较少的系统。

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