• Chinese Journal of Lasers
  • Vol. 48, Issue 21, 2101003 (2021)
Yi Hong1、2, Xia Hou1、*, Dijun Chen1、3, Cuiyun Zhou1, Minjie Huang1, Tieqiang Song1, Guibing Wang1, Jian Zhao1, and Weibiao Chen1
Author Affiliations
  • 1Spaceborne Laser Engineering Department, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
  • 2University of Chinese Academy of Sciences, Beijing 100049, China
  • 3Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou, Zhejiang 310024, China
  • show less
    DOI: 10.3788/CJL202148.2101003 Cite this Article Set citation alerts
    Yi Hong, Xia Hou, Dijun Chen, Cuiyun Zhou, Minjie Huang, Tieqiang Song, Guibing Wang, Jian Zhao, Weibiao Chen. Research on Frequency Stabilization Technology of Modulation Transfer Spectroscopy Based on Rb 87[J]. Chinese Journal of Lasers, 2021, 48(21): 2101003 Copy Citation Text show less
    Diagram of the experimental setup for MTS
    Fig. 1. Diagram of the experimental setup for MTS
    Rb87 52S1/2→52P3/2 transition Fg=2→Fe=1,2,3, and Fg=1→Fe=0,1,2 saturated absorption peak and MTS error signal
    Fig. 2. Rb87 52S1/2→52P3/2 transition Fg=2→Fe=1,2,3, and Fg=1→Fe=0,1,2 saturated absorption peak and MTS error signal
    MTS error signals of probe beam and pump beam in Rb87Fg=1→Fe=0,1,2 for three polarization states
    Fig. 3. MTS error signals of probe beam and pump beam in Rb87Fg=1→Fe=0,1,2 for three polarization states
    Energy level diagrams for the transitions 52S1/2→52P3/2 of Rb87. (a) Normalized intensity of Fg=1→Fe=0,1,2; (b)(c)energy level diagrams for the transitions Fg=1→Fe=0 where probe light and pump light are linearly polarized light in the same direction and vertical direction, respectively; (d)(e) energy level diagrams for the transitions Fg=1→Fe=0,1 probe light and pump light are linearly polarized light in the same direction and vertical direction, respectively
    Fig. 4. Energy level diagrams for the transitions 52S1/2→52P3/2 of Rb87. (a) Normalized intensity of Fg=1→Fe=0,1,2; (b)(c)energy level diagrams for the transitions Fg=1→Fe=0 where probe light and pump light are linearly polarized light in the same direction and vertical direction, respectively; (d)(e) energy level diagrams for the transitions Fg=1→Fe=0,1 probe light and pump light are linearly polarized light in the same direction and vertical direction, respectively
    MTS error signals of 25 mm and 50 mm rubidium cell in Rb87Fg=1→Fe=0,1,2
    Fig. 5. MTS error signals of 25 mm and 50 mm rubidium cell in Rb87Fg=1→Fe=0,1,2
    Experimental results of 25 mm and 50 mm rubidium cells. (a) Frequency fluctuation in 1 h; (b) Allan deviation within 1000 s
    Fig. 6. Experimental results of 25 mm and 50 mm rubidium cells. (a) Frequency fluctuation in 1 h; (b) Allan deviation within 1000 s
    Experimental results of frequency stability. (a) Peak to peak amplitude of frequency fluctuation in 20 h; (b) Allan deviation within 10000 s
    Fig. 7. Experimental results of frequency stability. (a) Peak to peak amplitude of frequency fluctuation in 20 h; (b) Allan deviation within 10000 s
    Yi Hong, Xia Hou, Dijun Chen, Cuiyun Zhou, Minjie Huang, Tieqiang Song, Guibing Wang, Jian Zhao, Weibiao Chen. Research on Frequency Stabilization Technology of Modulation Transfer Spectroscopy Based on Rb 87[J]. Chinese Journal of Lasers, 2021, 48(21): 2101003
    Download Citation