Development of the cesium fountain frequency standard, NMIJ-F2

A. Takamizawa, S. Yanagimachi, T. Tanabe, K. Hagimoto, I. Hirano, K. Watabe, T. Ikegami, J. Hartnett
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引用次数: 2

Abstract

We have made much progress on NMIJ-F2, which is our second cesium fountain frequency standard aiming an uncertainty of <; 1×10-15 as an immediate goal. The frequency stability is improved to 8.3×10-14τ-1/2 (τ: averaging time) by applying a cryogenic sapphire oscillator using a pulse-tube cryocooler as a local oscillator and optically pumping the atoms to the Zeeman sublevel mF = 0. Then, the homogeneous magnetic field in the interrogation region is obtained with magnetic shielding, a long solenoid coil, and two additional coils. The fractional frequency correction for the 2nd-order Zeeman shift is evaluated to be -165.5×10-15. Moreover, the fractional frequency correction for the collisional shift (the frequency shift due to collisions between cold atoms) is measured to be (+3.3±0.5)×10-15 by an extrapolation method.
铯喷泉频率标准NMIJ-F2的制定
我们在NMIJ-F2上取得了很大进展,这是我们的第二个铯喷泉频率标准,目标是不确定度为-15。通过使用脉冲管制冷机作为本振,并将原子光抽运到Zeeman亚能级mF = 0,将低温蓝宝石振荡器的频率稳定性提高到8.3×10-14τ-1/2 (τ:平均时间)。然后,通过磁屏蔽、一个长螺线管线圈和两个附加线圈获得审问区域内的均匀磁场。二阶塞曼位移的分数阶频率校正被评估为-165.5×10-15。此外,通过外推法测量了碰撞位移(冷原子之间碰撞引起的频率位移)的分数频率校正为(+3.3±0.5)×10-15。
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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