Development and tuning of the microwave resonant cavity of a cryogenic cesium atomic fountain clock.

Fan Yang, Xinliang Wang, Sichen Fan, Yang Bai, Junru Shi, Dandan Liu, Hui Zhang, Yong Guan, Qiang Hao, Jun Ruan, Shougang Zhang
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Abstract

A cryogenic cesium atomic fountain clock is a novel clock with the microwave cavity and atomic free flight region placed in liquid nitrogen. On the one hand, the blackbody radiation shift is reduced at cryogenic temperature. On the other hand, the vacuum in the atomic free flight region is optimized, and the background gas collision shift reduced. The microwave resonant cavity is the most important unit in a cryogenic cesium atomic fountain clock. Through theoretical and simulative investigation, this study designs the configuration and dimensions for an optimized microwave cavity. Concurrently, experiments reveal the effects of temperature, pressure, humidity, and other factors on the resonant frequency of the microwave cavity. Combining the theoretical and experimental study, we obtain the resonant frequency difference between the microwave cavity in a cryogenic vacuum and at room temperature and ambient pressure. By subtracting this frequency difference, we adjust the microwave cavity for room temperature and ambient pressure, then vacuumize and immerse it in liquid nitrogen for verification and fine tuning. Finally, we determine that the microwave cavity resonant frequency deviation from the clock transition frequency is 10 kHz with an unloaded quality factor of 25 000, which meets the application requirements of the cryogenic cesium atomic fountain clock.
低温铯原子喷泉钟微波谐振腔的研制与调谐。
低温铯原子喷泉钟是一种将微波腔和原子自由飞行区置于液氮中的新型钟。一方面,在低温下黑体辐射位移减小。另一方面,优化了原子自由飞行区的真空,降低了背景气体碰撞位移。微波谐振腔是低温铯原子喷泉钟的重要组成部分。通过理论和仿真研究,设计了优化后的微波腔体结构和尺寸。同时,实验揭示了温度、压力、湿度等因素对微波腔谐振频率的影响。结合理论和实验研究,得到了低温真空和常温常压下微波腔的谐振频率差。通过减去这个频率差,我们将微波腔调整为室温和环境压力,然后将其真空并浸入液氮中进行验证和微调。最后,我们确定微波腔谐振频率与时钟跃迁频率的偏差为10 kHz,空载质量因子为25 000,满足低温铯原子喷泉钟的应用要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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