NRC 88Sr+单离子光学频率标准研究进展

P. Dubé, A. Madej, J. Bernard, G. Humphrey, M. Vainio, J. Jiang, D.J. Jones
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引用次数: 3

摘要

我们报告了我们在NRC 88Sr+单离子光学频率标准方面的最新进展。通过主动稳定冷却、再泵和清除激光源,以及使用飞秒光纤激光频率梳将探测激光频率与微波时间标准连接起来,改善了标准的长期运行。利用飞秒光纤梳,我们已经演示了连续运行8天,连续测量探测激光源3天。在我们的射频保罗阱中,微动位移一直是不确定性的主要来源,因为在目前的设计中,激光束只能沿着一个轴进入。为了将这些位移减少到最小,我们构建了一个端盖陷阱,设计用于最小化沿三个正交轴的微运动。我们报道了用这种末端阱成功捕获单个离子。由于电极污染在陷阱加载过程中也会引起微运动位移,由于不断变化的贴片电位,我们已经通过光电离提高了陷阱加载效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent progress on the NRC 88Sr+ single-ion optical frequency standard
We report our recent progress made with the NRC 88Sr+ single-ion optical frequency standard. The long-term operation of the standard was improved by actively stabilizing the cooling, repump and clearout laser sources, and by using a femtosecond fiber laser frequency comb to link the probe laser frequency to the microwave time standards. With the femtosecond fiber comb, we have demonstrated continuous operation for a period of eight days and continuous measurement of the probe laser source for three days. Micromotion shifts have been the dominant source of uncertainty in our rf Paul trap because laser beam access is only possible along one axis in the current design. With the aim of reducing to a minimum these shifts, we have constructed an endcap trap designed for minimization of micromotion along three orthogonal axes. We report on the successful trapping of single ions with this endcap trap. Since electrode contamination during trap loading can also induce micromotion shifts as a result of evolving patch potentials, we have increased the trap loading efficiency with photo-ionization.
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