• Acta Optica Sinica
  • Vol. 40, Issue 10, 1014002 (2020)
Xingxing Zou1、2, Hui Shen2、***, Zhao Quan2, Yang You2, Meizhong Liu2, Jingpu Zhang2, Bing He2、**, Jun Zhou2, and Jianhua Zhang1、*
Author Affiliations
  • 1School of Mechanical Engineering and Automation, Shanghai University, Shanghai 200072, China
  • 2Shanghai Key Laboratory of All Solid-State Laser and Applied Techniques, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
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    DOI: 10.3788/AOS202040.1014002 Cite this Article Set citation alerts
    Xingxing Zou, Hui Shen, Zhao Quan, Yang You, Meizhong Liu, Jingpu Zhang, Bing He, Jun Zhou, Jianhua Zhang. Polarization Control and Laser Combination with High Polarization Extinction Ratios Based on Optical Heterodyne Detection and Phase Locking[J]. Acta Optica Sinica, 2020, 40(10): 1014002 Copy Citation Text show less
    Principle of polarization phase detection by optical heterodyne beat frequency
    Fig. 1. Principle of polarization phase detection by optical heterodyne beat frequency
    Schematic diagram for polarization beam combination system of two beams by the optical heterodyne phase locking
    Fig. 2. Schematic diagram for polarization beam combination system of two beams by the optical heterodyne phase locking
    Homodyne beat signal and spectrum before and after modulation by phase modulation signal. (a) Homodyne beat signal detected by photodetector without phase modulation; (b)(c) heterodyne beat signal and its spectrum detected by photodetector with phase modulation added; (d) error signal after mixing demodulation
    Fig. 3. Homodyne beat signal and spectrum before and after modulation by phase modulation signal. (a) Homodyne beat signal detected by photodetector without phase modulation; (b)(c) heterodyne beat signal and its spectrum detected by photodetector with phase modulation added; (d) error signal after mixing demodulation
    Model of laser phase-locked loop
    Fig. 4. Model of laser phase-locked loop
    Bode and Nyquist diagrams of laser phase-locked system in open loop. (a) Bode diagram; (b) Nyquist diagram
    Fig. 5. Bode and Nyquist diagrams of laser phase-locked system in open loop. (a) Bode diagram; (b) Nyquist diagram
    Error signal and power spectral density of phase noise. (a) Error signal in open and closed loops; (b) power spectral density of phase noise in closed loop
    Fig. 6. Error signal and power spectral density of phase noise. (a) Error signal in open and closed loops; (b) power spectral density of phase noise in closed loop
    Snapshots of the spot intensity profiles before and after phase locking. (a)-(c) Three snapshots of the spot intensity profiles without phase locking; (d)(e) spot snapshots after phase locking in the lowest and highest powers
    Fig. 7. Snapshots of the spot intensity profiles before and after phase locking. (a)-(c) Three snapshots of the spot intensity profiles without phase locking; (d)(e) spot snapshots after phase locking in the lowest and highest powers
    Polarization extinction ratio of combined beam in closed loop
    Fig. 8. Polarization extinction ratio of combined beam in closed loop
    Influence of laser power noise on polarization extinction ratio
    Fig. 9. Influence of laser power noise on polarization extinction ratio
    Xingxing Zou, Hui Shen, Zhao Quan, Yang You, Meizhong Liu, Jingpu Zhang, Bing He, Jun Zhou, Jianhua Zhang. Polarization Control and Laser Combination with High Polarization Extinction Ratios Based on Optical Heterodyne Detection and Phase Locking[J]. Acta Optica Sinica, 2020, 40(10): 1014002
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