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Cooling to the Ground State of Axial Motion for One Atom Strongly Coupled to an Optical Cavity

机译:冷却到一个原子强耦合到光腔的轴向运动的基态

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摘要

Localization to the ground state of axial motion is demonstrated for a single, trapped atom strongly coupled to the field of a high finesse optical resonator. The axial atomic motion is cooled by way of coherent Raman transitions on the red vibrational sideband. An efficient state detection scheme enabled by strong coupling in cavity QED is used to record the Raman spectrum, from which the state of atomic motion is inferred. We find that the lowest vibrational level of the axial potential with zero-point energy [h-bar]omegaa/2kB=13 µK is occupied with probability P0~=0.95.
机译:对于单个与高强度光学谐振器场强耦合的俘获原子,证明了其轴向运动的基态定位。轴向原子运动通过红色振动边带上的相干拉曼跃迁冷却。通过腔QED中的强耦合实现的有效状态检测方案用于记录拉曼光谱,从中推论出原子运动的状态。我们发现,零点能量ω-ω/ 2kB = 13 µK时轴向电势的最低振动水平以概率P0〜= 0.95占据。

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