• High Power Laser and Particle Beams
  • Vol. 33, Issue 11, 111003 (2021)
Mengqiu Fan1、4, Shengtao Lin2, han Wu3, Wanguo Zheng1、*, and Zinan Wang2、*
Author Affiliations
  • 1Laser Fusion Research Center, CAEP, P. O. Box 919-988, Mianyang 621900, China
  • 2Key Laboratory of Optical Fiber Sensing and Communications of Ministry of Education, University of Electronic Science and Technology of China, Chengdu 611731, China
  • 3College of Electronics and Information Engineering, Sichuan University, Chengdu 610064, China
  • 4Graduate School of China Academy of Engineering Physics, Beijing 100088, China
  • show less
    DOI: 10.11884/HPLPB202133.210306 Cite this Article
    Mengqiu Fan, Shengtao Lin, han Wu, Wanguo Zheng, Zinan Wang. Research progress of random fiber lasers’ characteristics in time-frequency-spatial domain[J]. High Power Laser and Particle Beams, 2021, 33(11): 111003 Copy Citation Text show less
    References

    [1] Turitsyn S K, Babin S A, El-Taher A E, et al. Random distributed feedback fibre laser[J]. Nature Photonics, 4, 231-235(2010).

    [2] Churkin D V, Sugavanam S, Vatnik I D, et al. Recent advances in fundamentals and applications of random fiber lasers[J]. Advances in Optics and Photonics, 7, 516-569(2015).

    [5] Turitsyn S K, Babin S A, Churkin D V, et al. Random distributed feedback fibre lasers[J]. Physics Reports, 542, 133-193(2014).

    [6] Wu Han, Xiong Ji, Han Bing, et al. Ultra-high speed random bit generation based on Rayleigh feedback assisted ytterbium-doped random fiber laser[J]. Science China Technological Sciences, 64, 1295-1301(2021).

    [7] Lin Shengtao, Wang Zinan, Li Jiaqi, 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[J]. Optics & Laser Technology, 134, 106613(2021).

    [8] González I R R, Raposo E P, Macêdo A M. Coexistence of turbulence-like and glassy behaviours in a photonic system[J]. Scientific Report, 8, 17046(2018).

    [9] Wang Zinan, Wu Han, Fan Mengqiu, et al. High power random fiber laser with short cavity length: theoretical and experimental investigations[J]. IEEE Journal of Selected Topics in Quantum Electronics, 21, 0900506(2015).

    [10] Churkin D V, Babin S A, El-Taher A E, et al. Raman fiber lasers with a random distributed feedback based on Rayleigh scattering[J]. Physical Review A, 82, 033828(2010).

    [11] Smirnov S V, Churkin D V. Modeling of spectral and statistical properties of a random distributed feedback fiber laser[J]. Optics Express, 21, 21236-21241(2013).

    [12] Kolokolov I V, Lebedev V V, Podivilov E V, et al. Theory of a random fiber laser[J]. Journal of Experimental and Theoretical Physics, 119, 1134-1139(2014).

    [13] Churkin D V, Kolokolov I V, Podivilov E V, et al. Wave kinetics of random fibre lasers[J]. Nature Communications, 6, 6214(2015).

    [14] Lin Shengtao, Wang Zinan, Araújo H A, et al. Ultrafast convergent power-balance model for Raman random fiber laser with half-open cavity[J]. Optics Express, 28, 22500-22510(2020).

    [15] Du Xueyuan, Zhang Hanwei, Wang Xiaolin, et al. Tunable random distributed feedback fiber laser operating at 1μm[J]. Applied Optics, 54, 908-911(2015).

    [16] Fan Mengqiu, Zong Zhaoyu, Tian Xiaocheng, et al. Comprehensive investigations on 1053 nm random distributed feedback fiber laser[J]. IEEE Photonics Journal, 9, 1501109(2017).

    [17] Wu Han, Wang Zinan, Sun Wei, et al. 1.5μm low threshold, high efficiency random fiber laser with hybrid erbium-Raman gain[J]. Journal of Lightwave Technology, 36, 844-849(2018).

    [18] Wu Han, Wang Zinan, Fan Mengqiu, et al. Multiwavelength ytterbium-Brillouin random Rayleigh feedback fiber laser[J]. Laser Physics Letters, 15, 035105(2018).

    [19] Wu Han, Wang Zinan, He Qiheng, et al. Common-cavity ytterbium/Raman random distributed feedback fiber laser[J]. Laser Physics Letters, 14, 065101(2017).

    [20] . (Agrawal G P. Nonlinear fiber optics[M]. Jia Dongfang, Ge Chunfeng, Wang Zhaoying, et al, trans. Beijing: Publishing House of Electronics Industry, 2014

    [21] Kuznetsov A G, Podivilov E V, Babin S A. Actively Q-switched Raman fiber laser[J]. Laser Physics Letters, 12, 035102(2015).

    [22] Bravo M, Fernandez-Vallejo M, Lopez-Amo M. Internal modulation of a random fiber laser[J]. Optics Letters, 38, 1542-1544(2013).

    [23] Xu Jiangming, Ye Jun, Xiao Hu, et al. Narrow-linewidth Q-switched random distributed feedback fiber laser[J]. Optics Express, 24, 19203-19210(2016).

    [24] Wu Han, Wang Zinan, He Qiheng, et al. Polarization-modulated random fiber laser[J]. Laser Physics Letters, 13, 055101(2016).

    [25] Wang Simin, Lin Wei, Chen Weicheng, et al. Low-threshold and multi-wavelength Q-switched random erbium-doped fiber laser[J]. Applied Physics Express, 9, 032701(2016).

    [26] Tang Yulong, Xu Jianqiu. A random Q-switched fiber laser[J]. Scientific Reports, 5, 9338(2015).

    [27] Zeng Xiaopei, Zhang Weili, Ma Rui, et al. Regulation of a pulsed random fiber laser in the Q-switched regime[J]. Laser Physics Letters, 13, 115105(2016).

    [28] Xu Jiangming, Ye Jun, Liu Wei, et al. Passively spatiotemporal gain-modulation-induced stable pulsing operation of a random fiber laser[J]. Photonics Research, 5, 598-603(2017).

    [29] Yao Baicheng, Rao Yunjiang Wang Zinan, et al. Graphene based widely-tunable and singly-polarized pulse generation with random fiber lasers[J]. Scientific Reports, 5, 18526(2015).

    [30] Ye Jun. High power rom fiber laser its spectral manipulation property[D]. Changsha: National University of Defense Technology, 2018

    [31] Wu Han. Research on the realization of novel rom fiber laser its applications[D]. Chengdu: University of Electronic Science Technology of China, 2019

    [32] Churkin D V, Smirnov S V, Podivilov E V. Statistical properties of partially coherent cw fiber lasers[J]. Optics Letters, 35, 3288-3290(2010).

    [33] Gorbunov O A, Sugavanam S, Vatnik I D, et al. Statistical properties of radiation of multiwavelength random DFB fiber laser[J]. Optics Express, 24, 19417-19423(2016).

    [34] Hammani K, Finot C, Dudley J M, et al. Optical rogue-wave-like extreme value fluctuations in fiber Raman amplifiers[J]. Optics Express, 16, 16467-16474(2008).

    [35] Gorbunov O A, Sugavanam S, Churkin D V. Intensity dynamics and statistical properties of random distributed feedback fiber laser[J]. Optics Letters, 40, 1783-1786(2015).

    [36] Xu Jiangming, Wu Jian, Ye Jun, et al. Optical rogue wave in random fiber laser[J]. Photonics Research, 8, 01000001(2020).

    [37] Gorbunov O A, Sugavanam S, Vatnik I D, et al. Poisson distribution of extreme events in radiation of random distributed feedback fiber laser[J]. Optics Letters, 45, 2375-2378(2020).

    [38] Wu Han, Han Bing, Wang Zinan, et al. Statistical properties of Er/Yb co-doped random Rayleigh feedback fiber laser[J]. Chinese Optics Letters, 19, 021402(2020).

    [39] Xu Jiangming, Lou Zhaokai, Ye Jun, et al. Incoherently pumped high-power linearly-polarized single-mode random fiber laser: experimental investigations and theoretical prospects[J]. Optics Express, 25, 5609-5617(2017).

    [40] Dong Jinyan, Zhang Lei, Jiang Huawei, et al. High order cascaded Raman random fiber laser with high spectral purity[J]. Optics Express, 26, 5275-5280(2018).

    [41] Ye Jun, Xu Jiangming, Song Jiaxin, et al. Pump scheme optimization of an incoherently pumped high-power random fiber laser[J]. Photonics Research, 7, 977-983(2019).

    [42] Zhang Yang, Song Jiaxin, Ye Jun, et al. Tunable random Raman fiber laser at 1.7 µm region with high spectral purity[J]. Optics Express, 27, 28800-28807(2019).

    [43] Han Bing, Rao Yunjiang, Wu Han, et al. Low-noise high-order Raman fiber laser pumped by random lasing[J]. Optics Letters, 45, 5804-5807(2020).

    [44] Andreasen J, Cao Hui. Numerical study of amplified spontaneous emission and lasing in random media[J]. Physical Review A, 82, 063835(2010).

    [45] Cao Hui. Lasing in random media[J]. Waves in Random Media, 13, R1-R39(2003).

    [46] Bliokh Y, Chaikina E I, Vatnik I D, et al. Temporal variation of the spectrum of a continuously pumped random fiber laser: phenomenological model[J]. Journal of the Optical Society of America B, 36, 408-414(2019).

    [47] Sugavanam S, Sorokina M, Churkin D V. Spectral correlations in a random distributed feedback fibre laser[J]. Nature Communications, 8, 15514(2017).

    [48] Samodnitsky G, Taqqu M S. Stable nonGaussian rom processes[M]. New Yk: Chapman Hall, 1994.

    [49] Lima B C, Gomes A S L, Pincheira P I R, et al. Observation of Lévy statistics in one-dimensional erbium-based random fiber laser[J]. Journal of the Optical Society of America B, 34, 293-299(2017).

    [50] Roa Gonzalez I R, Lima B C, Pincheira P I R, et al. Turbulence hierarchy in a random fibre laser[J]. Nature Communications, 8, 15731(2017).

    [51] Lima B C, Pincheira P I R, Raposo E P, et al. Extreme-value statistics of intensities in a cw-pumped random fiber laser[J]. Physical Review A, 96, 013834(2017).

    [52] Li Jiaqi, Wu Han, Wang Zinan, et al. Lévy spectral intensity statistics in a Raman random fiber laser[J]. Optics Letters, 44, 2799-2802(2019).

    [53] Mehta D S, Naik D N, Singh R K, et al. Laser speckle reduction by multimode optical fiber bundle with combined temporal, spatial, and angular diversity[J]. Applied Optics, 51, 1894-1904(2012).

    [54] Wang Fei, Liu Xianlong, Yuan Yangsheng, et al. Experimental generation of partially coherent beams with different complex degrees of coherence[J]. Optics Letters, 38, 1814-1816(2013).

    [56] Ma Rui. Research on mode modulation of rom fiber laser its applications[D]. Chengdu: University of Electronic Science Technology of China, 2019

    [57] He Jijun, Chan W K E, Cheng Xin, et al. Experimental and theoretical investigation of the polymer optical fiber random laser with resonant feedback[J]. Advanced Optical Materials, 6, 1701187(2018).

    [58] Redding B, Choma M A, Cao Hui. Speckle-free laser imaging using random laser illumination[J]. Nature Photonics, 6, 355-359(2012).

    [59] Ma Rui, Rao Yunjiang, Zhang Weili, et al. Multimode random fiber laser for speckle-free imaging[J]. IEEE Journal of Selected Topics in Quantum Electronics, 25, 0900106(2019).

    [60] Ma Rui, Li Jiaqi, Guo Jiayu, et al. High-power low spatial coherence random fiber laser[J]. Optics Express, 27, 8738-8744(2019).

    [61] Ma Rui, Zhang Weili, Guo Jiayu, et al. Decoherence of fiber supercontinuum light source for speckle-free imaging[J]. Optics Express, 26, 26758-26765(2018).

    Mengqiu Fan, Shengtao Lin, han Wu, Wanguo Zheng, Zinan Wang. Research progress of random fiber lasers’ characteristics in time-frequency-spatial domain[J]. High Power Laser and Particle Beams, 2021, 33(11): 111003
    Download Citation