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室温稳定多波长光纤激光器技术的研究新进展 被引量:24

Progress in Room-Temperature Stable Multi-Wavelength Fiber Laser Technologies
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摘要 室温稳定的多波长光纤激光器( MWFL)中最关键的技术是如何有效抑制掺杂光纤的均匀展宽效应。综述了国际上近年来提出的实现室温稳定多波长光纤激射的主要技术。介绍了近几年我们在该领域的一些创新性研究工作:提出了多种基于多谐振峰的光纤布拉格光栅(FBG) ,如多模光纤布拉格光栅、保偏光纤布拉格光栅、取样光纤布拉格光栅等的可开关多波长光纤激光器的新方法和新结构,实现了多种波长间隔小于2 nm,室温工作稳定性好、波长及波长间隔可调的可开关多波长光纤激光器;提出了基于非线性光纤环镜( NOLM)和非线性偏振旋转(NPR)效应的两种多波长掺铒光纤激光器(EDFL)实现技术,实现了室温稳定、功率谱分布平坦的宽带多波长激光输出,3 dB带宽内的波长个数可达50个,每个波长的功率波动在2 h内小于0 .1 dB。 The key technologies of achieving room-temperature stable multi-wavelength fiber lasers (MWFLs) are how to restrain the homogeneous broadening effect of the doped fiber at room temperature. We summarize the main technologies and methods reported recently to realize the room-temperature MWFLs, and introduce our innovative works in this field, including proposing several novel structures and operable technologies of switchable multiwavelength fiber lasers using special fiber Bragg gratings (FBG) with several resonance peaks, such as FBG in multimode fiber, FBG in polarization maintaining fiber and sampled FBG. Switchable multi-wavelength fiber lasing oscillations with less than 2 nm wavelength spacing, tunable wavelength and spacing and excellent room-temperature stability were demonstrated and realized. Two other erbium-doped MWFL designs are proposed respectively by using nonlinear polarization rotation (NPR) effect and a nonlinear optical loop mirror (NOLM) to induce intensitydependent loss. As a result, power-stable, broad bandwidth and uniform multiwavelength operations are obtained for both laser sources. Up to 50 wavelengths lasing oscillations with wavelength spacing of 0.8 nm within a 3 dB spectral range of 1562-1605 nm have been achieved. The measured power fluctuation of each wavelength is about 0.1 dB within a two-hour period.
出处 《中国激光》 EI CAS CSCD 北大核心 2007年第7期883-894,共12页 Chinese Journal of Lasers
基金 国家973计划(2003CB314906) 国家自然科学基金(10674074) 天津市自然科学基金重点项目(06YFJZJC00300)资助课题
关键词 激光技术 掺铒光纤激光器 掺镱光纤激光器 多波长 可开关 laser technique erbium-doped fiber laser ytterbium-doped fiber laser multi-wavelength switchable
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参考文献41

  • 1S. B. Poole, D. N. Payne, M. E. Fermann. Fabrication of low-loss optical fibers containing rare-earth ions [J]. Electron. Lett., 1985, 21(17):737-738
  • 2R. J. Mears, L. Reekie, S. B. Poole et al.. Low-threshold tunable-CW and Q-switched fiber laser operating at 1.54 μm [J]. Electron. Lett., 1986, 22(3):159-160
  • 3R. J. Mears, L. Reekie, I. M. Jauncey et al.. Low-noise erbium-doped fiber amplifier operating at 1.54μm [J]. Electron. Lett., 1987, 23(19):1026-1028
  • 4N. Park, P. F. Wysocki. 24-line multiwavelength operation of erbium-doped fiber-ring laser [J]. IEEE Photon. Technol. Lett., 1996, 8(11):1459-1461
  • 5A. Bellemare, M. Karasek, M. Rochette et al.. Room temperature multifrequency erbium-doped fiber lasers anchored on the ITU frequency grid [J]. J. Lightwave Technol., 2000, 18(6):825-831
  • 6Y. -G. Han, T. V. A. Tran, S. B. Lee. Wavelength-spacing tunable multi wavelength erbium-doped fiber laser based on four-wave mixing of dispersion-shift fiber [J]. Opt. Lett., 2006, 31(6):697-699
  • 7S. Pan, C. Lou, Y. Gao. Multiwavelength erbium-doped fiber laser based on inhomogeneous loss mechanism by use of a highly nonlinear fiber and a Fabry-Perot filter [J]. Opt. Express, 2006, 14(3):1113-1118
  • 8J. Sun, J. Qiu, D. Huang. Multiwavelength erbium-doped fiber lasers exploiting polarization hole burning [J]. Opt. Commun., 2000, 182(1-3):193-197
  • 9Y. Kimura, M. Nakazawa. Multiwavelength cw laser oscillation in a Nd^3+ and Er^3+ doubly doped fiber laser [J]. Appl. Phys. Lett., 1988, 53(14):1251-1253
  • 10N. Park, J. W. Dawson, K. J. Vahala. Multiple wavelength operation of an erbium-doped fiber laser [J]. IEEE Photon. Technol. Lett., 1992, 4(6):540-541

二级参考文献25

  • 1Qinghe Mao. John W. Y. Lit. Switchable multiwavelength erbium-doped fiber laser with cascaded fiber grating cavities[J]. IEEE Photon. Technol. Lett. 2002. 14(5):612-614.
  • 2Y. Z. Xu. H. Y. Tam. W. C. Du et al.. Tunable dualwavelength switching fiber grating laser [J]. IEEE Photon.Technol. Lett.. 1998. 10(3):334-336.
  • 3L. Talaverano. S. Abad. S. Jarabo et al.. Multiwavelength fiber laser sources with Bragg-grating sensor multiplexing capability [J]. J. Lightwave Technol. , 2001. 19(1):553-558.
  • 4Yong Wook Lee, Byoungbo Lee. Wavelength switchable erbium doped fiber ring laser using spectral polarizationdependent loss element [J]. IEEE Photon. Technol. Lett.,2003. 15(6):795-797.
  • 5J. Hernandez Cordero. V. A. Kozlov, A. L. G. Carter et al..Fiber laser polarization tuning using a Bragg grating in a Hi-Bi fiber [J]. IEEE Photon. Technol. Lett.. 1998. 10(7) : 941-943.
  • 6Bong-Ahn Yu. Jaejoong Kwon. Seunghwan Chuang et al..Muhiwavelength switchable SOA-fibre ring laser using sampled Hi Bi fibre grating [J]. Electron. Lett.. 2003. 39(8) : 649-650.
  • 7Donghui Zhao. Kam Tai Chan. Y. Liu et al.. Wavelengthswitched optical pulse generation in a fiber ring laser with a Fabry-Perot semiconductor modulator and a sampled fiber Bragg grating[J]. IEEE Photon. Technol. Lett. 2001. 13(3):191-193.
  • 8Junqiang Sun. Junlin Qiu. Dexiu Huang. Multiwavelength erbium doped fiber lasers exploiting polarization hole burning[J]. Opt. Commun. 2000. 182(8):193-197.
  • 9Raymond M. Sova. Chang-Seok Kim, Jin U. Kang. Tunable dual-wavelength all PM fiber ring laser [J]. IEEE Photon.Technol. Lett.. 2002. 14(3) :287-289.
  • 10S. Yamashita, T. Baba. Spacing-tunable multiwavelength fibre laser [J]. Electron Lett.. 2001, 37(16):1015-1016.

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