• Chinese Optics Letters
  • Vol. 20, Issue 7, 070201 (2022)
Chengzhi Yan, Haosen Shi*, Yuan Yao, Hongfu Yu, Yanyi Jiang**, and Longsheng Ma
Author Affiliations
  • State Key Laboratory of Precision Spectroscopy, East China Normal University, Shanghai 200062, China
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    DOI: 10.3788/COL202220.070201 Cite this Article Set citation alerts
    Chengzhi Yan, Haosen Shi, Yuan Yao, Hongfu Yu, Yanyi Jiang, Longsheng Ma. Automatic, long-term frequency-stabilized lasers with sub-hertz linewidth and 10−16 frequency instability[J]. Chinese Optics Letters, 2022, 20(7): 070201 Copy Citation Text show less
    Schematic diagram of the experimental setup for automatic laser frequency stabilization based on an analog-digital hybrid PID controller. FNC, fiber noise cancellation; PM fiber, polarization maintaining optical fiber; AOM, acousto-optic modulator; P1 and P2, polarizers; EOM, electro-optic modulator; ISO, optical isolator; λ/4, quarter-wave plate; PD, photo-detector; LPF, low pass filter; ADC, analog to digital converter; CMOS SW, CMOS analog switch; Digi-POT, digital potentiometer; PZT, piezo transducer.
    Fig. 1. Schematic diagram of the experimental setup for automatic laser frequency stabilization based on an analog-digital hybrid PID controller. FNC, fiber noise cancellation; PM fiber, polarization maintaining optical fiber; AOM, acousto-optic modulator; P1 and P2, polarizers; EOM, electro-optic modulator; ISO, optical isolator; λ/4, quarter-wave plate; PD, photo-detector; LPF, low pass filter; ADC, analog to digital converter; CMOS SW, CMOS analog switch; Digi-POT, digital potentiometer; PZT, piezo transducer.
    (a) Logic block diagram of automatic laser frequency locking. (b) The PDH signal and the cavity reflection signal with UPDH-0 and Ur-0 marked.
    Fig. 2. (a) Logic block diagram of automatic laser frequency locking. (b) The PDH signal and the cavity reflection signal with UPDH-0 and Ur-0 marked.
    (a) Signal of UPZT, UPDH, and Ur when the laser frequency starts to lock. (b) Statistics of laser frequency relocking time.
    Fig. 3. (a) Signal of UPZT, UPDH, and Ur when the laser frequency starts to lock. (b) Statistics of laser frequency relocking time.
    (a) Recorded beating frequency between two automatic frequency-locking laser systems at 1064 nm over 22 days. The inset shows the frequency instability of four sub-datasets. (b) The frequency instability of the beat note between two automatic frequency-locking laser systems at 1064 nm (Lasers #1 and #2, blue dots) and between Laser #1 and a cavity-stabilized 578 nm laser (red squares). The black dashed line indicates the thermal noise-limited laser frequency instability for a single 1064 nm laser. (c) Distribution of the linewidth measurement of the beat note between Lasers #1 and #2 measured on an FFT spectrum analyzer with a resolution bandwidth of 122 mHz. The inset shows one of the measurements.
    Fig. 4. (a) Recorded beating frequency between two automatic frequency-locking laser systems at 1064 nm over 22 days. The inset shows the frequency instability of four sub-datasets. (b) The frequency instability of the beat note between two automatic frequency-locking laser systems at 1064 nm (Lasers #1 and #2, blue dots) and between Laser #1 and a cavity-stabilized 578 nm laser (red squares). The black dashed line indicates the thermal noise-limited laser frequency instability for a single 1064 nm laser. (c) Distribution of the linewidth measurement of the beat note between Lasers #1 and #2 measured on an FFT spectrum analyzer with a resolution bandwidth of 122 mHz. The inset shows one of the measurements.
    Chengzhi Yan, Haosen Shi, Yuan Yao, Hongfu Yu, Yanyi Jiang, Longsheng Ma. Automatic, long-term frequency-stabilized lasers with sub-hertz linewidth and 10−16 frequency instability[J]. Chinese Optics Letters, 2022, 20(7): 070201
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