Random-distributed feedback fiber lasers based on Rayleigh scattering

被引:10
作者
Babin S.A. [1 ,2 ]
Vatnik I.D. [1 ]
机构
[1] Institute of Automation and Electrometry, Siberian Branch, Russian Academy of Sciences, Novosibirsk, 630090
[2] Novosibirsk State University, Novosibirsk, 630090
来源
Babin, S. A. (ilya.vatnik@gmail.com) | 1600年 / Allerton Press Incorporation卷 / 49期
关键词
distributed feedback; fiber laser; random laser; Rayleigh scattering; stimulated Raman scattering;
D O I
10.3103/S8756699013040018
中图分类号
学科分类号
摘要
Single-mode optical fibers have been widely used in optical communications, and effective fiber lasers have been designed on the basis of active fibers with linear or ring cavities. In fiber lasers, the distance between the cavity mirrors can reach 270 km (the maximum length is determined by the linear attenuation and nonlinear dephasing of the waves). In 2009, random lasing was found in a long telecommunications fiber without any cavity: the positive distributed feedback required for lasing is due to Rayleigh scattering of light, and distributed amplification is provided by stimulated Raman scattering. Such a laser can be classified into the group of so-called random lasers, actively studied recently; the fiber geometry and the weakness of Rayleigh scattering provide much better output characteristics compared to the other types of random lasers. The lasing efficiency and beam quality of this laser are comparable to those of fiber lasers with a conventional cavity. At the same time, it has a number of unique features (unlimited length, and mode-free spectrum etc.), providing new physical phenomena and new opportunities for applications in telecommunications and sensor systems. The paper presents a review of recent results of studies in this area. © 2013 Allerton Press, Inc.
引用
收藏
页码:323 / 344
页数:21
相关论文
共 60 条
[31]  
Zhang W.L., Zhu Y.Y., Rao Y.J., Et al., Random Fiber Laser Formed by Mixing Dispersion Compensated Fiber and Single Mode Fiber, Opt. Express., 21, 7, pp. 8544-8549, (2013)
[32]  
Rao Y.J., Zhang L.W., Zhu J.M., Et al., Hybrid Lasing in an Ultra-Long Ring Fiber Laser, Opt. Express., 20, 20, pp. 22563-22568, (2012)
[33]  
Ania-Castanon J.D., Quasi-Lossless Transmission Using Second-Order Raman Amplification and Fibre Bragg Gratings, Opt. Express, 12, 19, pp. 4372-4377, (2004)
[34]  
Churkin D.V., El-Taher A.E., Vatnik I.D., Et al., Experimental and Theoretical Study of Longitudinal Power Distribution in a Random DFB Fiber Laser, Opt. Express, 20, 10, pp. 11178-11188, (2012)
[35]  
Churkin D.V., El-Taher A.E., Vatnik I.D., Babin S.A., Longitudinal Distribution of the Lasing Power in an SRS Fiber Laser with Random Distributed Feedback and One-Way Pump, Kvant. Elektronika, 42, 9, pp. 1-4, (2012)
[36]  
Zhang W.L., Rao Y.J., Zhu J.M., Et al., Low Threshold 2nd-Order Random Lasing of a Fiber Laser with a Half-Opened Cavity, Opt. Express, 20, 13, (2012)
[37]  
Babin S.A., Churkin D.V., Podivilov E.V., Intensity Interactions in Cascades of a Two-Stage Raman Fiber Laser, Opt. Commun., 226, 1-6, pp. 329-335, (2003)
[38]  
Churkin D.V., Vatnik I.D., Turitsyn S.K., Babin S.A., Random Distributed Feedback Raman Fiber Laser Operating in a 1.2 μm Wavelength Range, Laser Phys., 21, 8, pp. 1525-1529, (2011)
[39]  
Vatnik I.D., Churkin D.V., Babin S.A., Turitsyn S.K., Cascaded Random Distributed Feedback Raman Fiber Laser Operating at 12 μm, Opt. Express, 19, 19, pp. 18486-18494, (2011)
[40]  
Terry N.B., Alley T.G., Russell T.H., An Explanation of SRS Beam Cleanup in Graded-Index Fibers and the Absence of SRS Beam Cleanup in Step-Index Fibers, Opt. Express, 15, 26, (2007)