中国激光, 2010, 37 (4): 901, 网络出版: 2010-04-20   

光纤布里渊激光器和放大器的研究进展及其应用 下载: 776次

Advances of Fiber Brillouin Lasers and Amplifiers and Their Applications
作者单位
上海交通大学 物理系区域光纤通信网与新型光通信系统国家重点实验室,上海 200240
引用该论文

詹黎, 顾照昶, 邢亮, 钱楷, 沈启舜, 夏宇兴. 光纤布里渊激光器和放大器的研究进展及其应用[J]. 中国激光, 2010, 37(4): 901.

Zhan Li, Gu Zhaochang, Xing Liang, Qian Kai, Shen Qishun, Xia Yuxing. Advances of Fiber Brillouin Lasers and Amplifiers and Their Applications[J]. Chinese Journal of Lasers, 2010, 37(4): 901.

参考文献

[1] . P. Ippen,R. H. Stolen. Stimulated Brillouin scattering in optical fibers[J]. Appl. Phys. Lett., 1972, 21(11): 539-541.

[2] M. Auerbach,D. Wandt,C. Fallnich et al.. High-power tunable narrow line width ytterbium-doped double-clad fiber laser [J]. Opt. Commun.,2001,195(5-6):437-441

[3] . X. Yang,L. Zhan,Q. S. Shen et al.. High-power single-longitudinal-mode laser with a ring Fabry-Pérot resonator and a saturable absorber[J]. IEEE Photon. Technol. Lett., 2008, 20(11): 879-881.

[4] . Lichtman,A. A. Friesem,R. G. Waarts et al.. Stimulated Brillouin scattering excited by a modulated pump wave in single-mode fibers[J]. J. Lightwave Technol., 1989, 7(1): 171-174.

[5] . Shiraki,M. Ohashi,M. Tateda. Suppression of stimulated Brillouin scattering in a fibre by changing the core radius[J]. Electron. Lett., 1995, 31(8): 668-669.

[6] . Yoshizawa,T. Imai. Stimulated Brillouin scattering suppression by means of applying strain distribution to fiber with cabling[J]. J. Lightwave Technol., 1993, 11(10): 1518-1522.

[7] . P. Liu. Suppressing stimulated Brillouin scattering in fiber amplifiers using nonuniform fiber and temperature gradient[J]. Opt. Express, 2007, 15(3): 977-984.

[8] . Lee,G. P. Agrawal. Suppression of stimulated Brillouin scattering in optical fibers using fiber Bragg gratings[J]. Opt. Express, 2003, 11(25): 3467-3472.

[9] 沈一春,宋牟平,章献民 等. 单模光纤中受激布里渊散射阈值研究[J]. 中国激光,2005,32(4):497-500

    Shen Yichun,Song Muping,Zhang Xianmin et al.. Analysis and measurement of stimulated Brillouin scattering threshold in single mode fiber [J]. Chinese J. Lasers,2005,32(4):497-500

[10] . H. Kee,G. P. Lees,T. P. Newson. All-fiber system for simultaneous interrogation of distributed strain and temperature sensing by spontaneous Brillouin scattering[J]. Opt. Lett., 2000, 25(10): 695-697.

[11] . Tanemura,Y. Takushima,K. Kikuchi. Narrowband optical filter,with a variable transmission spectrum,using stimulated Brillouin scattering in optical fiber[J]. Opt. Lett., 2002, 27(17): 1552-1554.

[12] . G. Atkins,D. Cotter,D. W. Smith et al.. Application of Brillouin amplification in coherent optical transmission[J]. Electron. Lett., 1986, 22(10): 556-558.

[13] G. P. Agrawal. Nonlinear Fiber Optics [M]. 4th ed.. Boston:Academic Press,2007

[14] . A. Olsson,J. P. Van der Ziel. Cancellation of fiber loss by semiconductor laser pumped Brillouin amplification at 1.5 μm[J]. Appl. Phys. Lett., 1986, 48(20): 1329-1330.

[15] . S. Abedin. Stimulated Brillouin scattering in single-mode tellurite glass fiber[J]. Opt. Express, 2006, 14(24): 11766-11772.

[16] . Nikles,L. Thevenaz,P. A. Robert. Brillouin gain spectrum characterization in single-mode optical fibers[J]. J. Lightwave Technol., 1997, 15(10): 1842-1851.

[17] . Q. Li,F. C. Zhang,T. Yoshino. Wide-range temperature dependence of Brillouin shift in a dispersion-shifted fiber and its annealing effect[J]. J. Lightwave Technol., 2003, 21(7): 1663-1667.

[18] . Florea,M. Bashkansky,Z. Dutton et al.. Stimulated Brillouin scattering in single-mode As2S3 and As2Se3 chalcogenide fibers[J]. Opt. Express, 2006, 14(25): 12063-12070.

[19] . I. Kovalev,R. G. Harrison. Threshold for stimulated Brillouin scattering in optical fiber[J]. Opt. Express, 2007, 15(26): 17625-17630.

[20] . Lichtman,A. A. Friesem,R. G. Waarts et al.. Stimulated Brillouin scattering excited by two pump waves in single mode fiber[J]. J. Opt. Soc. Am. B, 1987, 4(9): 1397-1403.

[21] . A. Olsson,J. P. Van der Ziel. Characteristics of a semiconductor laser pumped Brillouin amplifier with electronically controlled bandwidth[J]. J. Lightwave Technol., 1987, 5(1): 147-153.

[22] . Bayvel,I. P. Giles,P. M. Radmore. Transient and steady-state characteristics of a Brillouin amplifier based on an all-fibre single-mode ring resonator[J]. Opt. Quantum Electron., 1989, 21: S113-S128.

[23] . W. Tkach,A. R. Chraplyvy. Fiber Brillouin amplifiers[J]. Opt. Quantum Electron., 1989, 21(1): S105-S112.

[24] . N. Pannell,P. S. Russell,T. P. Newson. Stimulated Brillouin scattering in optical fibers:the effects of optical amplification[J]. J. Opt. Soc. Am. B, 1993, 10(4): 684-690.

[25] . F. Ferreira,J. F. Rocha,J. L. Pinto. Analysis of the gain and noise characteristics of fibre Brillouin amplifiers[J]. Opt. Quantum Electron., 1994, 26(1): 35-44.

[26] . R. Chraplyvy,R. W. Tkach. Narrowband tunable optical filter for channel selection in densely packed WDM systems[J]. Electron. Lett., 1986, 22(20): 1084-1085.

[27] . O. Van Deventer,A. J. Boot. Polarization properties of stimulated Brillouin scattering in single-mode fibers[J]. J. Lightwave Technol., 1994, 12(4): 585-590.

[28] . J. Song,L. Zhan,J. H. Ji et al.. Self-seeded multiwavelength Brillouin-erbium fiber laser[J]. Opt. Lett., 2005, 30(5): 486-488.

[29] . Kobyakov,S. Darmanyan,M. Sauer et al.. High-gain Brillouin amplification:an analytical approach[J]. Opt. Lett., 2006, 31(13): 1960-1962.

[30] . J. Strutz,K. J. Williams. Low-noise hybrid erbium/Brillouin amplifier[J]. Electron. Lett., 2000, 36: 1359-1360.

[31] . J. Strutz,K. J. Williams,R. D. Esman. Polarization-maintaining hybrid erbium-Brillouin amplifier for high-power low-noise sources[J]. IEEE Photon. Technol. Lett., 2001, 13(9): 936-938.

[32] L. L. Yi,L. Zhan,W. S. Hu et al.. A highly stable low-RIN hybrid Brillouin/erbium amplified laser source [J]. IEEE Photon. Technol. Lett.,2006,18(9-12):1028-1030

[33] P. C. Becker,N. A. Olsson,J. R. Simpson. Erbium-Dope Fiber Amplifiers - Fundamentals and Technology [M]. San Diego and London:Academic Press,1999

[34] . Xing,L. Zhan,S. Y. Luo et al.. High-power low-noise fiber Brillouin amplifier for tunable slow-light delay buffer[J]. IEEE J. Quantum. Electron., 2008, 44(12): 1133-1138.

[35] . W. Boyd,D. J. Gauthier,A. L. Gaeta. Application of slow light in telecommunications[J]. Opt. Photon. News, 2006, 17(4): 18-23.

[36] . Y. Song,M. G. Herraez,L. Thevenaz. Observation of pulse delaying and advancement in optical fibers using stimulated Brillouin scattering[J]. Opt. Express, 2005, 13(1): 82-88.

[37] . Okawachi,M. S. Bigelow,J. E. Sharping et al.. Tunable all-optical delays via Brillouin slow light in an optical fiber[J]. Phys. Rev. Lett., 2005, 94(15): 153902.

[38] . Y. Song,M. G. Herraez,L. Thevenaz. Long optically controlled delays in optical fibers[J]. Opt. Lett., 2005, 30(14): 1782-1784.

[39] . G. Herraez,K. Y. Song,L. Thevenaz. Arbitrary-bandwidth Brillouin slow light in optical fibers[J]. Opt. Express, 2006, 14(4): 1395-1400.

[40] . Y. Song,K. Hotate. 25 GHz bandwidth Brillouin slow light in optical fibers[J]. Opt. Lett., 2007, 32(3): 217-219.

[41] Lilin Yi,Li Zhan,Weisheng Hu et al.. Delay of broadband signals using slow light in stimulated Brillouin scattering with phase-modulated pump [J]. IEEE Photon. Technol. Lett.,2007,19(5-8):619-621

[42] . Xing,L. Zhan,L. L. Yi et al.. Storage capacity of slow-light tunable optical buffers based on fiber Brillouin amplifiers for real signal bit streams[J]. Opt. Express, 2007, 15(16): 10189-10195.

[43] . O. Hill,B. S. Kawasaki,D. C. Johnson. CW Brillouin laser[J]. Appl. Phys. Lett., 1976, 28(10): 608-609.

[44] . P. Smith,F. Zarinetchi,S. Ezekiel. Narrow-linewidth stimulated Brillouin fiber laser and applications[J]. Opt. Lett., 1991, 16(6): 393-395.

[45] . R. Ponikvar,S. Ezekiel. Stabilized single-frequency stimulated Brillouin fiber ring laser[J]. Opt. Lett., 1981, 6(8): 398-400.

[46] . Kalli,D. O. Culverhouse,D. A. Jackson. Fiber frequency shifter based on generation of stimulated Brillouin scattering in high finesse ring resonators[J]. Opt. Lett., 1991, 16(19): 1538-1540.

[47] . F. Stokes,M. Chodorow,H. J. Shaw. All-fiber stimulated Brillouin ring laser with submilliwatt pump threshold[J]. Opt. Lett., 1982, 7(10): 509-511.

[48] . O. Hill,D. C. Johnson,B. S. Kawasaki. CW generation of multiple Stokes and anti-Stokes Brillouin-shifted frequencies[J]. Appl. Phys. Lett., 1976, 29(3): 185-187.

[49] . R. Shirazi,S. W. Harun,M. Biglary et al.. Effect of Brillouin pump linewidth on the performance of Brillouin fiber laser[J]. ISAST Trans. Elec. Signal Proc., 2007, 1: 30.

[50] . R. Shirazi,S. W. Harun,M. Biglary et al.. Linear cavity Brillouin fiber laser with improved characteristics[J]. Opt. Lett., 2008, 33(8): 770-772.

[51] . Boschung,L. Thévenaz,P. A. Robert. High-accuracy measurement of the linewidth of a Brillouin fiber ring laser[J]. Electron. Lett., 1994, 30(18): 1488-1489.

[52] . Toyama,H. J. Shaw. Frequency stability of a Brillouin fiber ring laser[J]. J. Lightwave Technol., 1995, 13(7): 1445-1451.

[53] . Nicati,K. Toyama,S. Huang et al.. Temperature effects in a Brillouin fiber ring laser[J]. Opt. Lett., 1993, 18(24): 2123-2125.

[54] . Huang,L. Thévenaz,K. Toyama et al.. Optical Kerr-effect in fiber-optic Brillouin ring laser gyroscopes[J]. IEEE Photon. Technol. Lett., 1993, 5(3): 365-367.

[55] . Nicati,K. Toyama,S. Huang et al.. Frequency pulling in a Brillouin fiber ring laser[J]. IEEE Photon. Technol. Lett., 1994, 6(7): 801-803.

[56] . Geng,S. Staines,Z. Wang et al.. Highly stable low-noise Brillouin fiber laser with ultranarrow spectral linewidth[J]. IEEE Photon. Technol. Lett., 2006, 18(17): 1813-1815.

[57] . Botineau,C. Leycuras,C. Montes et al.. Stabilization of a stimulated Brillouin fiber ring laser by strong pump modulation[J]. J. Opt. Soc. Am. B, 1989, 6(3): 300-312.

[58] . Randoux,V. Lecoeuche,B. Ségard et al.. Dynamical behavior of a Brillouin fiber ring laser emitting two Stokes components[J]. Phys. Rev. A, 1995, 52(3): 2327-2334.

[59] . J. Cowle,D. Y. Stepanov. Hybrid Brillouin/erbium fiber laser[J]. Opt. Lett., 1996, 21(16): 1250-1252.

[60] . J. Cowle,D. Y. Stepanov. Multiple wavelength generation with Brillouin/erbium fiber lasers[J]. IEEE Photon. Technol. Lett., 1996, 8(11): 1465-1467.

[61] . S. Hurh,G. S. Hwang,J. Y. Jeon et al.. 1-Tb/s (100×2.4 Gb/s) transmission of 12.5-GHz-spaced ultradense WDM channels over a standard single-mode fiber of 1200 km[J]. IEEE Photon. Technol. Lett., 2005, 17(3): 696-698.

[62] D. Yu. Stepanov,G. J. Cowle. 30-channel 10-GHz laser comb from a multiline Brillouin erbium fiber laser [C]. Conference on Lasers and Electro-Optics,vol.11 of OSA Technical Digest Series (Optical Society of America,Washington,D.C.,1997),CTuG6

[63] . Yamashita,G. J. Cowle. Bidirectional 10-GHz optical comb generation with an intracavity fiber DFB pumped Brillouin/erbium fiber laser[J]. IEEE Photon. Technol. Lett., 1998, 10(6): 796-798.

[64] M. K. Abd-Rahman,M. K. Abdullah,H. Ahmad. Multiwavelength bidirectional operation of twin-cavity Brillouin/erbium fiber laser [J]. Opt. Commun.,2000,181(1-3):135-139

[65] M. H. Al-Mansoori,B. Bouzid,B. M. Ali et al.. Multi-wavelength Brillouin-erbium fibre laser in a linear cavity [J]. Opt. Commun.,2004,242(1-3):209-215

[66] . S. Lim,H. K. Lee,H. Kim et al.. Generation of multiorder Stokes and anti-Stokes lines in a Brillouin erbium fiber laser with a Sagnac loop mirror[J]. Opt. Lett., 1998, 23(21): 1671-1673.

[67] . P. Agrawal,M. Lax. Analytic evaluation of interference effects on laser output in a Fabry-Perot resonator[J]. J. Opt. Soc. Am., 1981, 71(5): 515-519.

[68] . W. Harun,X. S. Cheng,N. K. Saat et al.. S-band Brillouin erbium fibre laser[J]. Electron. Lett., 2005, 41(4): 174-176.

[69] . A. Mahdi,M. H. Al-Mansoori,M. Premaratue. Enhancement of multiwavelength generation in the L-band by using a novel Brillouin-erbium fiber laser with a passive EDF booster section[J]. Opt. Express, 2007, 15(18): 11570-11575.

[70] . H. Al-Mansoori,J. S. Iqbal,M. K. Abdullah et al.. Low threshold characteristics of an L-band Brillouin-erbium comb fiber laser in a linear cavity[J]. J. Opt. Soc. Am. B, 2006, 23(11): 2281-2284.

[71] . H. Al-Mansoori,M. A. Mahdi,M. Premaratue. Novel multiwavelength L-band Brillouin erbium fiber laser utilizing double-pass Brillouin pump preamplified technique[J]. IEEE J. Sel. Top. Quantum Electron., 2009, 15(2): 415-421.

[72] . H. Al-Mansoori,M. A. Mahdi. Tunable range enhancement of Brillouin-erbium fiber laser utilizing Brillouin pump pre-amplification technique[J]. Opt. Express, 2008, 16(11): 7649-7654.

[73] . W. Harun,H. Ahmad. Multiwavelength laser comb in L-band region with dual-cavity Brillouin/erbium fiber laser[J]. Jpn. J. Appl. Phys. A, 2002, 41(11): 1234-1236.

[74] . J. Song,L. Zhan,S. Hu et al.. Tunable multiwavelength Brillouin-erbium fiber laser with a polarization-maintaining fiber Sagnac loop filter[J]. IEEE Photon.Technol. Lett., 2004, 16(9): 2015-2017.

[75] . H. Al-Mansoori,M. Kamil Abd-Rahman,F. R. Mahamd Adikan et al.. Widely tunable linear cavity multiwavelength Brillouin-erbium fiber lasers[J]. Opt. Express, 2005, 13(9): 3471-3476.

[76] . Ajiya,M. A. Mahdi,M. H. Al-Mansoori et al.. Seamless tuning range based-on available gain bandwidth in multiwavelength Brillouin fiber laser[J]. Opt. Express, 2009, 17(8): 5944-5952.

[77] D. D. Park,J. H. Park,N. K. Park et al.. 53-line multi-wavelength generation of Brillouin/erbium fiber laser with enhanced Stokes feedback coupling [C]. OFC 2000,3,Paper ThA4-3,11-13

[78] 詹黎,宋跃江,夏宇兴. 128波长输出的自注入布里渊光纤激光器[J]. 激光与光电子进展,2005,42(12):21-22

    Zhan Li,Song Yuejiang,Xia Yuxing. 128 wavelength self-seeded Brillouin fiber laser [J]. Laser & Optoelectronics Progress,2005,42(12):21-22

[79] . A. Fotiadi,R. V. Kiyan. Cooperative stimulated Brillouin and Rayleigh backscattering process in optical fiber[J]. Opt. Lett., 1998, 23(23): 1805-1807.

[80] 汪平河,廖 弦,饶云江. 一种新型自激发布里渊掺铒光纤激光器[J]. 光学学报,2007,27(12):2200-2204

    Wang Pinghe,Liao Xian,Rao Yunjiang. A novel self-exciting Brillouin erbium-doped fiber laser [J]. Acta Optica Sinica,2007,27(12):2200-2204

[81] . Zhan,J. H. Ji,J. Xia et al.. 160-line multiwavelength generation of linear-cavity self-seeded Brillouin-erbium fiber laser[J]. Opt. Express, 2006, 14(22): 10233-10238.

[82] . Huang,L. Zhan,J. H. Ji et al.. Multiwavelength self-seeded Brillouin-erbium fiber laser with 45-nm tunable range[J]. Opt. Commun., 2008, 281(3): 452-456.

[83] . X. Zhang,L. Zhan,Y. X. Xia. Tunable self-seeded multiwavelength Brillouin-erbium fiber laser with enhanced power efficiency[J]. Opt. Express, 2007, 15: 9731-9736.

[84] . Fok,Chester Shu. Spacing-adjustable multi-wavelength source from a stimulated Brillouin scattering assisted erbium-doped fiber laser[J]. Opt. Express, 2006, 14(7): 2618-2624.

[85] N. Sugimoto,T. Nagashima,T. Hasegawa et al.. Bismuth-based optical fiber with nonlinear coefficient of 1360 W-1km-1 [C]. Opti. Fiber Commun. Conf. (OFC),2004,2:3

[86] . S. Abedin. Observation of strong stimulated Brillouin scattering in single-mode AssSe3 chalcogenide fiber[J]. Opt. Express, 2005, 13(25): 10266-10271.

[87] . S. Abedin. Brillouin amplification and lasing in a single-mode AssSe3 chalcogenide fiber[J]. Opt. Lett., 2006, 31(11): 1615-1617.

[88] . Qin,A. Mori,Y. Ohishi. Brillouin lasing in a single-mode tellurite fiber[J]. Opt. Lett., 2007, 32(15): 2179-2181.

[89] . W. Harun,S. Shahi,H. Ahmad. Compact Brillouin-erbium fiber laser[J]. Opt. Lett., 2009, 34(1): 46-48.

[90] . Ahmad,S. Shahi,S. W. Harun. Multi-wavelength laser generation with bismuth-based erbium-doped fiber[J]. Opt. Express, 2009, 17(1): 203-207.

[91] . W. Harun,S. N. Aziz,N. Temchek et al.. Brillouin fibre laser with 20 m-long photonic crystal fibre[J]. Electron. Lett., 2008, 44(18): 1065-1066.

[92] . Salhi,A. Hindeur,T. Chtier et al.. Evidence of Brillouin scattering in an ytterbium-doped double-cald fiber laser[J]. Opt. Lett., 2002, 27(15): 1294-1296.

[93] . Dainese,P. St. J. Russell,N. Joly et al.. Stimulated Brillouin scattering from multi-GHz-guided acoustic phonons in nanostructured photonic crystal fibres[J]. Nature Phys., 2006, 2: 388-392.

[94] 周涛,陈军,唐淳 等. 主振荡功率放大激光器中锥度光纤相位共轭镜的实验研究[J]. 中国激光,2005,32(4):471-474

    Zhou Tao,Chen Jun,Tang Chun et al.. Experimental study on optical tapered fiber phase-conjugator in MOPA system [J]. Chinese J. Lasers,2005,32(4):471-474

[95] . C. Rodgers,T. H. Russell,W. B. Rob. Laser beam combining and cleanup by stimulated Brillouin scattering in a multimode optical fiber[J]. Opt. Lett., 1999, 24(16): 1124-1126.

[96] . A. Fotiadi,P. Megret,M. Blondel. Dynamics of a self-Q-switched fiber laser with a Rayleigh-stimulated Brillouin scattering ring mirror[J]. Opt. Lett., 2004, 29(10): 1078-1080.

[97] 吕月兰,吕志伟,杨 珺 等. 单模光纤中受激布里渊散射对纳秒激光脉冲的光限幅特性[J]. 中国激光,2003,30(11):998-1002

    Lü Yuelan,Lü Zhiwei,Yang Jun et al.. Optical limiting of Nd:YAG nanosecond laser pulses by stimulated Brillouin scattering in single-mode fiber [J]. Chinese J. Lasers,2003,30(11):998-1002

[98] . K. Kadiwar,I. P. Giles. Optical fibre Brillouin ring laser gyroscope[J]. Electron. Lett., 1989, 25(25): 1729-1731.

[99] . Loayssa,D. Benito,M. J. Garde. Optical carrier-suppression technique with a Brillouin-erbium fiber laser[J]. Opt. Lett., 2000, 25(4): 197-199.

[100] . L. Butler,J. S. Wey,M. W. Chbat et al.. Optical clock recovery from a data stream of an arbitrary bit rate by use of stimulated Brillouin scattering[J]. Opt. Lett., 1995, 20(6): 560-562.

[101] 张峰,陈明,秦曦 等. 恶化非归零码信号的全光时钟恢复[J]. 中国激光,2007,34(8):1101-1105

    Zhang Feng,Chen Ming,Qin Xi et al.. All optical clock recovery from degraded non-return-to-zero data stream [J]. Chinese J. Lasers,2007,34(8):1101-1105

[102] . S. Yao. High-quality microwave signal generation by use of Brillouin scattering in optical fibers[J]. Opt. Lett., 1997, 22(17): 1329-1331.

[103] . Geng,S. Staines,S. Jiang. Dual-frequency Brillouin fiber laser for optical generation of tunable low-noise radio frequency/microwave frequency[J]. Opt. Lett., 2008, 33(1): 16-18.

詹黎, 顾照昶, 邢亮, 钱楷, 沈启舜, 夏宇兴. 光纤布里渊激光器和放大器的研究进展及其应用[J]. 中国激光, 2010, 37(4): 901. Zhan Li, Gu Zhaochang, Xing Liang, Qian Kai, Shen Qishun, Xia Yuxing. Advances of Fiber Brillouin Lasers and Amplifiers and Their Applications[J]. Chinese Journal of Lasers, 2010, 37(4): 901.

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