Distributed cavity phase and the associated power dependence

R. Li, K. Gibble
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引用次数: 15

Abstract

We discuss the power dependence of distributed cavity phase errors for cylindrical TE011 cavities in laser-cooled atomic fountain clocks. The azimuthally symmetric phase variations produce a surprisingly large distributed cavity phase error for two 2pi, 4pi, and 6pi pulses. This is due to the correlation between the transverse variation of the Rabi frequency over the cavity aperture and a quadratic density variation of the atomic sample, along with the symmetry of the longitudinal phase variation in the cavity. We show that the large azimuthally symmetric fields and phase shifts near the walls of the endcap holes produce very small errors at optimal power for a uniform wall resistance. We also show the power variation for higher order azimuthal variations m=1, 2, and 4. These may be caused by fountain tilts, nonuniform detection of atoms, and asymmetries in the laser trapping and cooling of the atoms. We demonstrate that distributed cavity phase errors in physical cavities may have no variation with the microwave power. A combination of rigorous calculations of cavity losses, measurements of power dependence, the atomic distributions, and fountain tilts, and electrical measurements that show the lower limit of the cavity Q and the cavity symmetry, should provide stringent limits on distributed cavity phase errors for current atomic clocks
分布腔相位和相关的功率依赖性
讨论了激光冷却原子喷泉钟中TE011圆柱腔分布腔相位误差的功率依赖性。对于2、4和6 π脉冲,方位对称相位变化产生了惊人的大分布腔相位误差。这是由于拉比频率在空腔孔径上的横向变化与原子样品的二次密度变化之间的相关性,以及空腔中纵向相位变化的对称性。我们表明,在均匀壁阻的最佳功率下,端帽孔壁附近的大方位对称场和相移产生非常小的误差。我们还展示了高阶方位角变化m= 1,2,4的功率变化。这可能是由于喷泉倾斜、原子检测不均匀以及激光捕获和冷却原子的不对称性造成的。我们证明了物理腔中的分布腔相位误差可能不随微波功率的变化而变化。结合腔损耗的严格计算、功率依赖性的测量、原子分布和喷泉倾斜,以及显示腔Q下限和腔对称性的电测量,应该为当前原子钟的分布腔相位误差提供严格的限制
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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