• Chinese Journal of Lasers
  • Vol. 49, Issue 7, 0701003 (2022)
Gang Jin1、*, Yongjie Cheng1, Chengzu Huang1, Xingxun Liu1, Wanquan Qi1, and Jun He2、3
Author Affiliations
  • 1Beijing Institute of Radio Metrology and Measurement, Beijing 100039, China
  • 2State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Opto-Electronics, Shanxi University, Taiyuan, Shanxi 030006, China
  • 3Collaborative Innovation Center of Extreme Optics of the Ministry of Education and Shanxi Province, Shanxi University, Taiyuan, Shanxi 030006, China
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    DOI: 10.3788/CJL202249.0701003 Cite this Article Set citation alerts
    Gang Jin, Yongjie Cheng, Chengzu Huang, Xingxun Liu, Wanquan Qi, Jun He. Generation of Laser System Using for Rydberg Atom Excitation[J]. Chinese Journal of Lasers, 2022, 49(7): 0701003 Copy Citation Text show less
    Energy level diagram of cesium atom
    Fig. 1. Energy level diagram of cesium atom
    Schematic of Rydberg atom EIT setup (λ/2 represents half-wave plate, PBS represents polarizing beam splitter, SAS represents staturated absorption spectrum, lock-in +PID represents lock-in and PID module; current represents the drive current port of laser; PZT represents piezoceramics; YDFA represents ytterbium-doped fiber amplifier, PPLN represents periodically poled lithium niobate, wavemeter represents Highfiness WS-7 wavelength meter, PD represents photodetector)
    Fig. 2. Schematic of Rydberg atom EIT setup (λ/2 represents half-wave plate, PBS represents polarizing beam splitter, SAS represents staturated absorption spectrum, lock-in +PID represents lock-in and PID module; current represents the drive current port of laser; PZT represents piezoceramics; YDFA represents ytterbium-doped fiber amplifier, PPLN represents periodically poled lithium niobate, wavemeter represents Highfiness WS-7 wavelength meter, PD represents photodetector)
    Schematic of cat-eye configure laser setup (diode represents laser emitter; col lens represents collimating lens; filter represents a narrow bandwidth filter, the emission beam wavelength can be changed via rotating the filter angle θ;OC represents the output plate)
    Fig. 3. Schematic of cat-eye configure laser setup (diode represents laser emitter; col lens represents collimating lens; filter represents a narrow bandwidth filter, the emission beam wavelength can be changed via rotating the filter angle θ;OC represents the output plate)
    Saturated absorption spectrum (SAS) signal of 852 nm laser and error signal after demodulating SAS signal
    Fig. 4. Saturated absorption spectrum (SAS) signal of 852 nm laser and error signal after demodulating SAS signal
    Matched temperature curve of 509 nm doubled frequency system (the fundamental wavelength is 1018.9 nm, the optimal temperature is 51.9 ℃,and the full width at half maxima is 0.9 ℃)
    Fig. 5. Matched temperature curve of 509 nm doubled frequency system (the fundamental wavelength is 1018.9 nm, the optimal temperature is 51.9 ℃,and the full width at half maxima is 0.9 ℃)
    Relationship between output second-harmonic laser and injected fundmental wave powers
    Fig. 6. Relationship between output second-harmonic laser and injected fundmental wave powers
    EIT signal in different coupling beam powers (vertical axes represent transmitted intensity of probe beam, horizontal axes represent frequency detuning of coupling beam)
    Fig. 7. EIT signal in different coupling beam powers (vertical axes represent transmitted intensity of probe beam, horizontal axes represent frequency detuning of coupling beam)
    Gang Jin, Yongjie Cheng, Chengzu Huang, Xingxun Liu, Wanquan Qi, Jun He. Generation of Laser System Using for Rydberg Atom Excitation[J]. Chinese Journal of Lasers, 2022, 49(7): 0701003
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