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Improvement of Laser Frequency Stabilization for the Optical Pumping Cesium Beam Standard 被引量:2

Improvement of Laser Frequency Stabilization for the Optical Pumping Cesium Beam Standard
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摘要 A method is presented to improve the laser frequency stabilization for the optical pumping cesium clock. By comparing the laser frequency stabilization of different schemes, we verify that the light angle is an important factor that limits the long-term frequency stability. We minimize the drift of the light angle by using a fiber- coupled output, and lock the frequency of a distributed-feedback diode laser to the fluorescence spectrum of the atomic beam. The measured frequency stability is about 3.5 ×10^-11 at i s and reaches 1.5 × 10^-12 at 2000s. The Allan variance keeps going down for up to thousands of seconds, indicating that the medium- and long-term stability of the laser frequency is significantly improved and perfectly fulfills the requirement for the optical pumping cesium clock. A method is presented to improve the laser frequency stabilization for the optical pumping cesium clock. By comparing the laser frequency stabilization of different schemes, we verify that the light angle is an important factor that limits the long-term frequency stability. We minimize the drift of the light angle by using a fiber- coupled output, and lock the frequency of a distributed-feedback diode laser to the fluorescence spectrum of the atomic beam. The measured frequency stability is about 3.5 ×10^-11 at i s and reaches 1.5 × 10^-12 at 2000s. The Allan variance keeps going down for up to thousands of seconds, indicating that the medium- and long-term stability of the laser frequency is significantly improved and perfectly fulfills the requirement for the optical pumping cesium clock.
出处 《Chinese Physics Letters》 SCIE CAS CSCD 2015年第5期69-72,共4页 中国物理快报(英文版)
基金 Supported by the National Fundamental Research Program of China under Grant No 2011CB921501 the National Natural Science Foundation of China under Grant Nos 91336103,10934010 and 61078026
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  • 1Zhang X, Huang K K, Xu H, Xu Z X, Li N and Lu X H 2012 Chin. Phys. Lett. 29 074206.
  • 2Qi X H, Chen W L, Yi L, Zhou D W, Zhou T, Xiao Q, Duan J, Zhou X J and Chen X Z 2009 Chin. Phys. Lett. 26 044205.
  • 3Corwin K L, Lu Z T, Hand C F, Epstein R J and Wieman C E 1998 Appl. Opt. 37 3295.
  • 4Yoshikawa Y, Umeki T, Mukae T, Torii Y and Kuga T 2003 Appl. Opt. 42 6645.
  • 5Queiroga F, Martins W S, Mestre V, Vidal I, Silans T P, Oriá M and Chevrollier M 2012 Appl. Phys. B 107 313.
  • 6Rovera G D, Santarelli G and Clairon A 1994 Rev. Sci. Instrum. 65 1502.
  • 7Liu X C and Boudot R 2012 IEEE Trans. Instrum. Meas. 61 2852.
  • 8Affolderbach C and Mileti G 2005 Rev. Sci. Instrum. 76 073108.
  • 9Barwood G P, Gill P and Rowley W R C 1991 Appl. Phys. B 53 142.

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