• Infrared and Laser Engineering
  • Vol. 51, Issue 12, 20220226 (2022)
Jie Guo1, Dongyu Yan2, Genyu Bi1, Aoran Feng1..., Bowen Liu1, Yuxi Chu1, Youjian Song1 and Minglie Hu1|Show fewer author(s)
Author Affiliations
  • 1Ultrafast Laser Laboratory, College of Precision Instruments and Opto-Electronics Engineering, Tianjin University, Tianjin 300072, China
  • 2School of Electronic Engineering, Tianjin University of Technology and Education, Tianjin 300222, China
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    DOI: 10.3788/IRLA20220226 Cite this Article
    Jie Guo, Dongyu Yan, Genyu Bi, Aoran Feng, Bowen Liu, Yuxi Chu, Youjian Song, Minglie Hu. Nonlinearity optimization of dispersion-managed mode-locked Yb-doped fiber lasers with near-zero net cavity dispersion[J]. Infrared and Laser Engineering, 2022, 51(12): 20220226 Copy Citation Text show less
    Schematic illustration of the dispersion-managed fiber laser cavity, the letters A-E represents SMF1, YDF, SMF2, SESAM, and CFBG in turn. OC: output coupler, DCF: dispersion compensating fiber
    Fig. 1. Schematic illustration of the dispersion-managed fiber laser cavity, the letters A-E represents SMF1, YDF, SMF2, SESAM, and CFBG in turn. OC: output coupler, DCF: dispersion compensating fiber
    (a) The output maximum spectral width, the maximum pump strength, and B-integral versus the length of SMF1. Inset: The auto correlation trace of dechirped pulse when the SMF1 length is 0.1 m; (b)-(c) The evolution of the spectral width and the pulse duration in the cavity; (d) Evolution of pulse spectrum with the number of round trips; (e)-(f)the spectral width and the pulse duration evolve with the number of round trips
    Fig. 2. (a) The output maximum spectral width, the maximum pump strength, and B-integral versus the length of SMF1. Inset: The auto correlation trace of dechirped pulse when the SMF1 length is 0.1 m; (b)-(c) The evolution of the spectral width and the pulse duration in the cavity; (d) Evolution of pulse spectrum with the number of round trips; (e)-(f)the spectral width and the pulse duration evolve with the number of round trips
    (a) The output maximum spectral width, the maximum pump strength, and B-integral versus the length of SMF1. Inset: The auto correlation trace of dechirped pulse when the SMF1 length is 0.1 m; (b)-(c) The evolution of the spectral width and the pulse duration in the cavity; (d) Evolution of pulse spectrum with the number of round trips; (e)-(f) the spectral width and the pulse duration evolve with the number of round trips
    Fig. 3. (a) The output maximum spectral width, the maximum pump strength, and B-integral versus the length of SMF1. Inset: The auto correlation trace of dechirped pulse when the SMF1 length is 0.1 m; (b)-(c) The evolution of the spectral width and the pulse duration in the cavity; (d) Evolution of pulse spectrum with the number of round trips; (e)-(f) the spectral width and the pulse duration evolve with the number of round trips
    (a) The output maximum spectral width, the maximum pump strength and B-integral versus the length of SMF1; (b)-(c) The evolution of the spectral width and the pulse duration in the cavity
    Fig. 4. (a) The output maximum spectral width, the maximum pump strength and B-integral versus the length of SMF1; (b)-(c) The evolution of the spectral width and the pulse duration in the cavity
    (a) the maximum spectral width, the maximum pump strength and B-integral versus the length of SMF1; (b)-(c) the evolution of the spectral width and the pulse duration in the cavity
    Fig. 5. (a) the maximum spectral width, the maximum pump strength and B-integral versus the length of SMF1; (b)-(c) the evolution of the spectral width and the pulse duration in the cavity
    [in Chinese]
    Fig. 5. [in Chinese]
    The maximum spectral width in the cavity under the same pump strength with different NCDs. Inset (a)-(b) two different evolutions of the spectral width and the pulse duration in the cavity
    Fig. 6. The maximum spectral width in the cavity under the same pump strength with different NCDs. Inset (a)-(b) two different evolutions of the spectral width and the pulse duration in the cavity
    Jie Guo, Dongyu Yan, Genyu Bi, Aoran Feng, Bowen Liu, Yuxi Chu, Youjian Song, Minglie Hu. Nonlinearity optimization of dispersion-managed mode-locked Yb-doped fiber lasers with near-zero net cavity dispersion[J]. Infrared and Laser Engineering, 2022, 51(12): 20220226
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