• Laser & Optoelectronics Progress
  • Vol. 61, Issue 9, 0914007 (2024)
Haiyue Pang1、2、*, Xiangjie Qin1, Jiateng Zheng1, Zhiyong Tao1、2, and Yaxian Fan1、2
Author Affiliations
  • 1Guangxi Key Laboratory of Wireless Broadband Communication and Signal Processing, School of Information and Communication, Guilin University of Electronic Technology, Guilin 541004, Guangxi , China
  • 2College of Electronic Information, Guilin University of Electronic Technology, Beihai 536000, Guangxi , China
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    DOI: 10.3788/LOP231351 Cite this Article Set citation alerts
    Haiyue Pang, Xiangjie Qin, Jiateng Zheng, Zhiyong Tao, Yaxian Fan. Tunable Multi-Wavelength Brillouin-Erbium-Doped Random Fiber Laser[J]. Laser & Optoelectronics Progress, 2024, 61(9): 0914007 Copy Citation Text show less
    Experimental setup of the tunable multi-wavelength Brillouin-erbium-doped random fiber laser
    Fig. 1. Experimental setup of the tunable multi-wavelength Brillouin-erbium-doped random fiber laser
    Output spectrum of Brillouin-erbium-doped random fiber laser when PTLS is 0 and 5 mW, respectively. (a) PTLS=0; (b) PTLS=5 mW
    Fig. 2. Output spectrum of Brillouin-erbium-doped random fiber laser when PTLS is 0 and 5 mW, respectively. (a) PTLS=0; (b) PTLS=5 mW
    Output spectrum of Brillouin-erbium-doped random fiber laser under different PLD, and the variation curves of the number of BSLs and the average power of the laser with the change of PLD. (a) Output spectrum; (b) variation curves of the number of BSLs and the average power of the laser with the change of PLD
    Fig. 3. Output spectrum of Brillouin-erbium-doped random fiber laser under different PLD, and the variation curves of the number of BSLs and the average power of the laser with the change of PLD. (a) Output spectrum; (b) variation curves of the number of BSLs and the average power of the laser with the change of PLD
    Output spectrum of Brillouin-erbium-doped random fiber laser under different PTLS, and the variation curves of the number of BSLs and the average power of the laser with the change of PTLS. (a) Output spectrum; (b) variation curves of the number of BSLs and the average power of the laser with the change of PTLS
    Fig. 4. Output spectrum of Brillouin-erbium-doped random fiber laser under different PTLS, and the variation curves of the number of BSLs and the average power of the laser with the change of PTLS. (a) Output spectrum; (b) variation curves of the number of BSLs and the average power of the laser with the change of PTLS
    Spectrum of multi-wavelength Brillouin-erbium-doped random fiber laser under different λTLS
    Fig. 5. Spectrum of multi-wavelength Brillouin-erbium-doped random fiber laser under different λTLS
    OSNR of the multi-wavelength Brillouin-erbium-doped random fiber laser at different λTLS
    Fig. 6. OSNR of the multi-wavelength Brillouin-erbium-doped random fiber laser at different λTLS
    Wavelength shift and peak power fluctuation of the laser in 1 h duration. (a) Wavelength shift; (b) peak power fluctuation
    Fig. 7. Wavelength shift and peak power fluctuation of the laser in 1 h duration. (a) Wavelength shift; (b) peak power fluctuation
    Haiyue Pang, Xiangjie Qin, Jiateng Zheng, Zhiyong Tao, Yaxian Fan. Tunable Multi-Wavelength Brillouin-Erbium-Doped Random Fiber Laser[J]. Laser & Optoelectronics Progress, 2024, 61(9): 0914007
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