• Infrared and Laser Engineering
  • Vol. 50, Issue 3, 20210031 (2021)
Li Gao1, Xiaoli Zhang1, Jingting Ma2, Wenxiu Yao1, Qingwei Wang1, Yue Sun2, Zunlong Liu2, Yajun Wang1、3, Long Tian1、3, and Yaohui Zheng1、3
Author Affiliations
  • 1State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Opto-Electronics, Shanxi University, Taiyuan 030006, China
  • 2Beijing Huahang Radio Measurement Institute, Beijing 102401, China
  • 3Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, China
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    DOI: 10.3788/IRLA20210031 Cite this Article
    Li Gao, Xiaoli Zhang, Jingting Ma, Wenxiu Yao, Qingwei Wang, Yue Sun, Zunlong Liu, Yajun Wang, Long Tian, Yaohui Zheng. Quantum enhanced Doppler LiDAR based on integrated quantum squeezed light source(Invited)[J]. Infrared and Laser Engineering, 2021, 50(3): 20210031 Copy Citation Text show less
    Distribution of the squeezed state in phase space and the photon number distribution of the squeezed state
    Fig. 1. Distribution of the squeezed state in phase space and the photon number distribution of the squeezed state
    Theoretical diagram of the quantum enhanced self-homodyne detection (PBS: polarization beam splitter; PD: photodetector; SA: spectrum analyzer)
    Fig. 2. Theoretical diagram of the quantum enhanced self-homodyne detection (PBS: polarization beam splitter; PD: photodetector; SA: spectrum analyzer)
    Experimental setup of quantum enhanced LiDAR detection based on the squeezed state light field. HR: high reflectivity mirror; AOM: audio-optical modulator; BS: beam splitter; DBS: dichromatic beam splitter; OPA: optical parameter amplifier; PBS1-2: polarization beam splitter; PD: photodetector; SA: spectrum analyzer
    Fig. 3. Experimental setup of quantum enhanced LiDAR detection based on the squeezed state light field. HR: high reflectivity mirror; AOM: audio-optical modulator; BS: beam splitter; DBS: dichromatic beam splitter; OPA: optical parameter amplifier; PBS1-2: polarization beam splitter; PD: photodetector; SA: spectrum analyzer
    Measurement results of squeezing level of the integrated squeezed light field ((a) Quantum noise limit; (b) Noise spectrum of squeezed state light field; (c) Minimum squeezed degree of noise spectrum of squeezed state light field)
    Fig. 4. Measurement results of squeezing level of the integrated squeezed light field ((a) Quantum noise limit; (b) Noise spectrum of squeezed state light field; (c) Minimum squeezed degree of noise spectrum of squeezed state light field)
    Measured results of quantum enhanced Dopplor information detection by self-homodyne detection system ((a) Noise spectrum of squeezed light injection echo signal; (b) Noise spectrum of shot noise datum; (c) Noise spectrum of coherent light injection echo signal)
    Fig. 5. Measured results of quantum enhanced Dopplor information detection by self-homodyne detection system ((a) Noise spectrum of squeezed light injection echo signal; (b) Noise spectrum of shot noise datum; (c) Noise spectrum of coherent light injection echo signal)
    Li Gao, Xiaoli Zhang, Jingting Ma, Wenxiu Yao, Qingwei Wang, Yue Sun, Zunlong Liu, Yajun Wang, Long Tian, Yaohui Zheng. Quantum enhanced Doppler LiDAR based on integrated quantum squeezed light source(Invited)[J]. Infrared and Laser Engineering, 2021, 50(3): 20210031
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