• Chinese Optics Letters
  • Vol. 22, Issue 12, 121402 (2024)
Xingyu Bao, Shengtao Lin, Jiaojiao Zhang, Longqun Ni..., Yifei Qi, Anchi Wan and Zinan Wang*|Show fewer author(s)
Author Affiliations
  • Key Laboratory of Optical Fiber Sensing and Communications, University of Electronic Science and Technology of China, Chengdu 611731, China
  • show less
    DOI: 10.3788/COL202422.121402 Cite this Article Set citation alerts
    Xingyu Bao, Shengtao Lin, Jiaojiao Zhang, Longqun Ni, Yifei Qi, Anchi Wan, Zinan Wang, "Characterization and tailoring of statistical properties of erbium-doped random fiber lasers," Chin. Opt. Lett. 22, 121402 (2024) Copy Citation Text show less
    References

    [1] S. K. Turitsyn, S. A. Babin, A. E. El-Taher et al. Random distributed feedback fibre laser. Nat. Photonics, 4, 231(2010).

    [2] B. Han, Y. Rao, H. Wu et al. Low-noise high-order Raman fiber laser pumped by random lasing. Opt. Lett., 45, 5804(2020).

    [3] S. A. Babin, I. D. Vatnik, A. Y. Laptev et al. High-efficiency cascaded Raman fiber laser with random distributed feedback. Opt. Express, 22, 24929(2014).

    [4] Z. Wang, H. Wu, M. Fan et al. High power random fiber laser with short cavity length: theoretical and experimental investigations. IEEE J. Sel. Top. Quantum Electron., 21, 0900506(2015).

    [5] X. Du, H. Zhang, X. Wang et al. Short cavity-length random fiber laser with record power and ultrahigh efficiency. Opt. Lett., 41, 571(2016).

    [6] V. Balaswamy, S. Ramachandran, V. R. Supradeepa. High-power, cascaded random Raman fiber laser with near complete conversion over wide wavelength and power tuning. Opt. Express, 27, 9725(2019).

    [7] L. Zhang, H. Jiang, X. Yang et al. Nearly-octave wavelength tuning of a continuous wave fiber laser. Sci. Rep., 7, 42611(2017).

    [8] Y. Zhang, J. Ye, X. Ma et al. High power tunable multiwavelength random fiber laser at 1.3 µm waveband. Opt. Express, 29, 5516(2021).

    [9] J. Xu, L. Huang, M. Jiang et al. Near-diffraction-limited linearly polarized narrow-linewidth random fiber laser with record kilowatt output. Photonics Res., 5, 350(2017).

    [10] S. Du, T. Qi, D. Li et al. 10 kW fiber amplifier seeded by random fiber laser with suppression of spectral broadening and SRS. IEEE Photon. Technol. Lett., 34, 721(2022).

    [11] S. Lin, Z. Wang, J. Li et al. Nonlinear dynamics of four-wave mixing, cascaded stimulated Raman scattering and self Q-switching in a common-cavity ytterbium/Raman random fiber laser. Opt. Laser Technol., 134, 106613(2021).

    [12] S. Lin, Z. Wang, J. Zhang et al. Radiation build-up and dissipation in Raman random fiber laser. Sci. China Inf. Sci., 67, 112402(2024).

    [13] J. Xu, J. Wu, J. Ye et al. Optical rogue wave in random fiber laser. Photonics Res., 8, 1(2020).

    [14] S. Lin, Z. Wang, Y. Qi et al. Wideband remote-sensing based on random fiber laser. J. Light. Technol., 40, 3104(2022).

    [15] L. Wang, T. Qi, Z. Liu et al. Complex pattern transmission through multimode fiber under diverse light sources. APL Photonics, 7, 106104(2022).

    [16] R. Ma, K. H. Luo, J. S. He et al. Digital generation of super-Gaussian perfect vortex beams via wavefront shaping with globally adaptive feedback. High Power Laser Sci. Eng., 12, e5(2023).

    [17] H. Wu, Z. Wang, W. Sun et al. 1.5 µm low threshold, high efficiency random fiber laser with hybrid erbium-Raman gain. J. Light. Technol., 36, 844(2018).

    [18] D. V. Churkin, S. Sugavanam, I. D. Vatnik et al. Recent advances in fundamentals and applications of random fiber lasers. Adv. Opt. Photonics, 7, 516(2015).

    [19] A. S. L. Gomes, C. B. de Araújo, A. M. S. Macêdo et al. Photonics bridges between turbulence and spin glass phenomena in the 2021 Nobel Prize in physics. Light Sci. Appl., 11, 104(2022).

    [20] A. S. L. Gomes, B. C. Lima, P. I. R. Pincheira et al. Glassy behavior in a one-dimensional continuous-wave erbium-doped random fiber laser. Phys. Rev. A, 94, 011801(2016).

    [21] Y. Bliokh, E. I. Chaikina, I. D. Vatnik et al. Temporal variation of the spectrum of a continuously pumped random fiber laser: phenomenological model. J. Opt. Soc. Am. B, 36, 408(2019).

    [22] E. P. Raposo, I. R. R. González, E. D. Coronel et al. Intensity g(2) correlations in random fiber lasers: a random-matrix-theory approach. Phys. Rev. A, 105, L031502(2022).

    [23] O. A. Gorbunov, S. Sugavanam, D. V. Churkin. Intensity dynamics and statistical properties of random distributed feedback fiber laser. Opt. Lett., 40, 1783(2015).

    [24] O. A. Gorbunov, S. Sugavanam, I. D. Vatnik et al. Statistical properties of radiation of multiwavelength random DFB fiber laser. Opt. Express, 24, 19417(2016).

    [25] J. Li, H. Wu, Z. Wang et al. Lévy spectral intensity statistics in a Raman random fiber laser. Opt. Lett., 44, 2799(2019).

    [26] B. C. Lima, A. S. L. Gomes, P. I. R. Pincheira et al. Observation of Lévy statistics in one-dimensional erbium-based random fiber laser. J. Opt. Soc. Am. B, 34, 293(2017).

    [27] H. Wu, B. Han, Z. Wang et al. Statistical properties of Er/Yb co-doped random Rayleigh feedback fiber laser. Chin. Opt. Lett., 19, 021402(2021).

    [28] J. Zhang, S. Lin, X. Bao et al. Full bandwidth statistical properties of the Raman random fiber laser. Chin. Opt. Lett., 22, 061401(2024).

    [29] H. Wu, J. Xiong, B. Han et al. Ultra-high speed random bit generation based on Rayleigh feedback assisted ytterbium-doped random fiber laser. Sci. China Technol. Sci., 64, 1295(2021).

    [30] H. Wu, H. Liu, W. Wang et al. Tailoring the efficiency and spectrum of a green random laser generated by frequency doubling of random fiber lasers. Opt. Express, 29, 21521(2021).

    [31] H. Wu, B. Han, Z. Wang et al. Temporal ghost imaging with random fiber lasers. Opt. Express, 28, 9957(2020).

    [32] Y. Qi, S. Lin, J. Zhang et al. Impact of feedback bandwidth on Raman random fiber laser remote-sensing. Opt. Express, 30, 21268(2022).

    [33] M. Fan, S. Lin, K. Yao et al. Spectrum-tailored random fiber laser towards ICF laser facility. Matter Radiat. Extrem., 8, 025902(2023).

    [34] R. Ma, X. Quan, H. Wu et al. 20 watt-level single transverse mode narrow linewidth and tunable random fiber laser at 1.5 µm band. Opt. Express, 30, 28795(2022).

    [35] I. D. Vatnik, O. A. Gorbunov, S. Sugavanam et al. Spatial location of correlations in a random distributed feedback Raman fiber laser. Opt. Lett., 44, 1516(2019).

    [36] C. Baker, Y. Lu, X. Bao. Chromatic-dispersion measurement by modulation phase-shift method using a Kerr phase-interrogator. Opt. Express, 22, 22314(2014).

    [37] Z. Wang, J. Zeng, J. Li et al. Ultra-long phase-sensitive OTDR with hybrid distributed amplification. Opt. Lett., 39, 5866(2014).

    Xingyu Bao, Shengtao Lin, Jiaojiao Zhang, Longqun Ni, Yifei Qi, Anchi Wan, Zinan Wang, "Characterization and tailoring of statistical properties of erbium-doped random fiber lasers," Chin. Opt. Lett. 22, 121402 (2024)
    Download Citation