Laser & Optoelectronics Progress, Volume. 50, Issue 9, 90602(2013)

Study on the Relaxation Oscillation Suppression in a Short-Cavity Single-Frequency DBR Fiber Laser

Zhan Biao1、*, Xu Shanhui1, Mo Shupei1, Li Can1, Yang Changsheng1, Feng Zhouming1,2, Zhang Weinan1,2, Chen Dongdan1,2, and Yang Zhongmin1,2
Author Affiliations
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    References(27)

    [1] [1] G A Ball, W W Morey, W H Glenn. Standing-wave monomode erbium fiber laser [J]. IEEE Photon Technol Lett, 1991, 3(7): 613-615.

    [2] [2] C Spiegelberg, J Geng, Y Hu, et al.. Low-noise narrow-linewidth fiber laser at 1550 nm [J]. J Lightwave Technol, 2004, 22(1): 57-62.

    [3] [3] S H Xu, Z M Yang, W N Zhang, et al.. 400 mW ultrashort cavity low-noise single-frequency Yb 3+-doped phosphate fiber laser [J]. Opt Lett, 2011, 36(18): 3708-3710.

    [4] [4] L N Ma, Y M Hu, S Xiong, et al.. Intensity noise and relaxation oscillation of a fiber-laser sensor array integrated in a single fiber [J]. Opt Lett, 2010, 35(11): 1795-1797.

    [5] [5] L N Ma, Z Hu, X Liang, et al.. Relaxation oscillation in Er3+-doped and Yb3+/Er3+co-doped fiber grating lasers [J]. Appl Opt, 2010, 49(10): 1979-1985.

    [6] [6] G A Cranch, G Flockhart, C K Kirkendall. Distributed feedback fiber laser strain sensors [J]. IEEE Sens J, 2008, 8(7): 1161-1172.

    [7] [7] Liang Xun, Xiong Shuidong, Hu Yongming, et al.. Impact of relative intensity noise on fiber optic hydrophone′s phase generated carrier scheme [J]. Chinese J Lasers, 2009, 35(5): 716-721.

    [8] [8] J G Williams, S G Turyshev, D H Boggs. Progress in lunar laser ranging tests of relativistic gravity [J]. Phys Rev Lett, 2004, 93(26): 261101.

    [9] [9] D Psaltis. Coherent optical information systems [J]. Science, 2002, 298(5597): 1359-1363.

    [10] [10] B P Abbott, R Abbott, R Adhikari, et al.. LIGO: the laser interferometer gravitational-wave observatory [J]. Rep Prog Phys, 2009, 72(7): 076901.

    [11] [11] G A Cranch. Frequency noise reduction in erbium-doped fiber distributed-feedback lasers by electronic feedback [J]. Opt Lett, 2002, 27(13): 1114-1116.

    [12] [12] T C Ralph, E H Huntington, C C Harb, et al.. Understanding and controlling laser intensity noise [J]. Opt Quantum Electron, 1999, 31(5): 583-598.

    [13] [13] Liu Kui, Cui Shuzhen, Zhang Hailong, et al.. Noise suppression of a single frequency fiber laser [J]. Chin Phys Lett, 2011, 28(7): 074211.

    [14] [14] P K Lam, T C Ralph, E H Huntington, et al.. Noiseless signal amplification using positive electro-optic feedforward [J]. Phys Rev Lett, 1997, 79(8): 1471-1474.

    [16] [16] S Taccheo, P Laporta, O Svelto, et al.. Intensity noise reduction in a single-frequency ytterbium-codoped erbium laser [J]. Opt Lett, 1996, 21(21): 1747-1749.

    [17] [17] G De Geronimo, S Taccheo, P Laporta. Optoelectronic feedback control for intensity noise suppression in a codoped erbium-ytterbium glass laser [J]. Electron Lett, 1997, 33(15): 1336-1337.

    [18] [18] C C Harb, M B Gray, H A Bachor, et al.. Suppression of the intensity noise in a diode-pumped neodymium:YAG nonplanar ring laser [J]. IEEE J Quantum Electron, 1994, 30(12): 2907-2913.

    [21] [21] Zhang Xiuyong, Gao MMingwei, Gao Chunqing. Suppression of the intensity noise of monolithic non-plannar ring oscillator laser [J]. Optical Technique, 2008, 34(5): 774-777.

    [22] [22] S H Xu, Z M Yang, T Liu, et al.. An efficient compact 300 mW narrow-linewidth single frequency fiber laser at 1.5 μm [J]. Opt Express, 2010, 18(2): 1249-1254.

    [23] [23] Zhang Weinan, Li Can, Mo Shupei, et al.. A compact low noise single frequency linearly polarized DBR fiber laser at 1550 nm [J]. Chin Phys Lett, 2012, 29(8): 084205.

    [25] [25] G A Cranch, M A Englund, C K Kirkendall. Intensity noise characteristics of erbium-doped distributed-feedback fiber lasers [J]. IEEE J Quantum Electron, 2003, 39(12): 1579-1587.

    [27] [27] C S Yang, S H Xu, C Li, et al.. Ultra compact kilohertz-linewidth high-power single-frequency laser based on Er3+/Yb3+-codoped phosphate fiber amplifier [J]. Appl Phys Express, 2013, 6(2): 022703.

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    Zhan Biao, Xu Shanhui, Mo Shupei, Li Can, Yang Changsheng, Feng Zhouming, Zhang Weinan, Chen Dongdan, Yang Zhongmin. Study on the Relaxation Oscillation Suppression in a Short-Cavity Single-Frequency DBR Fiber Laser[J]. Laser & Optoelectronics Progress, 2013, 50(9): 90602

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    Paper Information

    Category: Fiber Optics and Optical Communications

    Received: Apr. 10, 2013

    Accepted: --

    Published Online: Jul. 1, 2013

    The Author Email: Biao Zhan (zhanbiao267@163.com)

    DOI:10.3788/lop50.090602

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