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频移跳变拉莫尔谱

Ramsey Spectroscopy with Displaced Frequency Jumps.

机构信息

National Institute of Standards and Technology, Boulder, Colorado 80305, USA.

University of Colorado, Boulder, Colorado 80309-0440, USA.

出版信息

Phys Rev Lett. 2019 Mar 22;122(11):113601. doi: 10.1103/PhysRevLett.122.113601.

Abstract

Sophisticated Ramsey-based interrogation protocols using composite laser pulse sequences have been recently proposed to provide next-generation high-precision atomic clocks with a near perfect elimination of frequency shifts induced during the atom-probing field interaction. We propose here a simple alternative approach to the autobalanced Ramsey interrogation protocol and demonstrate its application to a cold-atom microwave clock based on coherent population trapping (CPT). The main originality of the method, based on two consecutive Ramsey sequences with different dark periods, is to sample the central Ramsey fringes with frequency jumps finely adjusted by an additional frequency-displacement concomitant parameter, scaling as the inverse of the dark period. The advantage of this displaced frequency-jump Ramsey method is that the local oscillator (LO) frequency is used as a single physical variable to control both servo loops of the sequence, simplifying its implementation and avoiding noise associated with controlling the LO phase. When tested using a CPT cold-atom clock, the DFJR scheme reduces the sensitivity of the clock frequency to variations of the light shifts by more than an order of magnitude compared with the standard Ramsey interrogation. This simple method can be applied in a wide variety of Ramsey-spectroscopy based applications including frequency metrology with CPT-based and optical atomic clocks, mass spectrometry, and precision spectroscopy.

摘要

最近提出了基于复杂激光脉冲序列的精密 Ramsey 探测协议,以提供新一代高精度原子钟,近乎完美地消除原子探测场相互作用过程中产生的频率移动。本文提出了一种简单的自动平衡 Ramsey 探测协议替代方案,并将其应用于基于相干布居囚禁(CPT)的冷原子微波钟。该方法的主要创新之处在于,利用具有不同暗周期的两个连续 Ramsey 序列,通过附加的频率位移伴随参数对中央 Ramsey 条纹进行采样,该参数与暗周期的倒数成比例。这种具有频率跳跃的 Ramsey 探测方法的优势在于,本地振荡器(LO)频率可作为单个物理变量来控制序列的两个伺服环路,从而简化了其实现,并避免了与控制 LO 相位相关的噪声。当在 CPT 冷原子钟中进行测试时,与标准 Ramsey 探测相比,DFJR 方案将时钟频率对光频移变化的灵敏度降低了一个数量级以上。该简单方法可广泛应用于各种基于 Ramsey 光谱学的应用中,包括基于 CPT 和光学原子钟的频率计量、质谱和精密光谱学。

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引用本文的文献

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Reduction of light shifts in Ramsey spectroscopy with a combined error signal.
Appl Phys Lett. 2019;114(14). doi: 10.1063/1.5093921.

本文引用的文献

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2
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Sci Rep. 2018 Aug 17;8(1):12300. doi: 10.1038/s41598-018-30608-1.
3
Composite laser-pulses spectroscopy for high-accuracy optical clocks: a review of recent progress and perspectives.
Rep Prog Phys. 2018 Sep;81(9):094401. doi: 10.1088/1361-6633/aac9e9. Epub 2018 Jun 4.
4
Autobalanced Ramsey Spectroscopy.
Phys Rev Lett. 2018 Feb 2;120(5):053602. doi: 10.1103/PhysRevLett.120.053602.
5
Systematic evaluation of an atomic clock at 2 × 10(-18) total uncertainty.
Nat Commun. 2015 Apr 21;6:6896. doi: 10.1038/ncomms7896.
6
Ultrafast Ramsey interferometry to implement cold atomic qubit gates.
Sci Rep. 2014 Jul 29;4:5867. doi: 10.1038/srep05867.
7
Reconstruction of non-classical cavity field states with snapshots of their decoherence.
Nature. 2008 Sep 25;455(7212):510-4. doi: 10.1038/nature07288.
8
Quantum jumps of light recording the birth and death of a photon in a cavity.
Nature. 2007 Mar 15;446(7133):297-300. doi: 10.1038/nature05589.
10
High contrast Ramsey fringes with coherent-population-trapping pulses in a double lambda atomic system.
Phys Rev Lett. 2005 May 20;94(19):193002. doi: 10.1103/PhysRevLett.94.193002. Epub 2005 May 17.

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