Volume 41 Issue 1
Mar.  2012
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Yang Xiufeng, Dong Fengjuan, Tong Zhengrong, Cao Ye. Tunable multi-wavelength fiber laser based on nonlinear polarization rotation[J]. Infrared and Laser Engineering, 2012, 41(1): 53-57.
Citation: Yang Xiufeng, Dong Fengjuan, Tong Zhengrong, Cao Ye. Tunable multi-wavelength fiber laser based on nonlinear polarization rotation[J]. Infrared and Laser Engineering, 2012, 41(1): 53-57.

Tunable multi-wavelength fiber laser based on nonlinear polarization rotation

  • Publish Date: 2012-01-25
  • A tunable multi-wavelength erbium-doped fiber laser with up to 17 wavelengths was proposed. The intensity-dependent inhomogeneous loss induced by nonlinear polarization rotation (NPR) was applied to mitigate the mode competition caused by the homogeneous gain medium of erbium-doped fiber. Therefore, stable multi-wavelength output was generated at room temperature. In this experiment, a polarization-maintaining fiber(PMF) with a polarization-dependent isolator was used to form an equivalent Lyot birefringent fiber filter. The wavelength spacing could be altered by selecting proper length of the birefringent fiber. In the meantime, the fine tuning of wavelength could be achieved through adjusting polarization controllers(PC). A 10 m length of PMF was inserted into the laser cavity, which resulted in 17 wavelengths output with 0.35 nm wavelength spacing. In addition, a 4 nm tuning range was realized through PCs fine tuning. Three different coupling ratio couplers were used. And the laser was output from the small ratio port. The maximum numbers of the output wavelengths were 13, 14 and 17 with 7 dB,10 dB and 13 dB fluctuation for 50:50, 30:70 and 10:90 couplers, respectively. Besides, the corresponding maximum output power were 0 dBm、-3 dBm and -7 dBm. The results indicate that the output wavelength number is reduced, wavelength spectrum becomes smoother and output power is higher while the output rate of the output coupler is increasing.
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    [4] 张祖兴, 桑明煌, 叶志清, 等. 基于非线性偏振旋转效应的多波长光纤激光器[J]. 光学学报, 2008, 28(4): 648-652.
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    [8] Gao Xuesong, Gao Chunqing, Song Xueyong, et al. Theoretical analysis and experimental study of output characteristics of Er3+ doped ring cavity fiber laser[J]. Infrared and Laser Engineering, 2006, 35(5): 573-578. (in Chinese)
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    [12] Zhou K, Zhou D, Dong F, et al. Room-temperature multi- wavelength erbium-doped fiber ring laser employing sinusoidal phase-modulation feedback[J]. Opt Lett, 2003, 28 (11): 893-895
    [13] Matsas V J, Newson T P, Richardson D J, et al. Self starting passively mode-locked fiber ring soliton laser exploiting nonlinear polarization rotation[J]. Electron Lett, 1992, 28(15): 1391-1393.
    [14] 高雪松, 高春清, 宋学勇,等. 环形掺Er3+光纤激光器输出特性分析与实验研究[J].红外与激光工程, 2006, 35(5):573-578.
    [15] Zhang Z X, Ye Z Q, Xu Kun, et al. Tunable nonlinear-polarization-rotation based on multi-wavelength fiber laser with in-line fiber filter[C]// Optical Fiber Communication Optoelectronic Exposition Conference, 2008.
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Tunable multi-wavelength fiber laser based on nonlinear polarization rotation

  • 1. Key Laboratory of Film Electronics and Communication Devices,Key Laboratory of Intelligent Computing and Novel Software Technology,Tianjin University of Technology,Tianjin 300384,China

Abstract: A tunable multi-wavelength erbium-doped fiber laser with up to 17 wavelengths was proposed. The intensity-dependent inhomogeneous loss induced by nonlinear polarization rotation (NPR) was applied to mitigate the mode competition caused by the homogeneous gain medium of erbium-doped fiber. Therefore, stable multi-wavelength output was generated at room temperature. In this experiment, a polarization-maintaining fiber(PMF) with a polarization-dependent isolator was used to form an equivalent Lyot birefringent fiber filter. The wavelength spacing could be altered by selecting proper length of the birefringent fiber. In the meantime, the fine tuning of wavelength could be achieved through adjusting polarization controllers(PC). A 10 m length of PMF was inserted into the laser cavity, which resulted in 17 wavelengths output with 0.35 nm wavelength spacing. In addition, a 4 nm tuning range was realized through PCs fine tuning. Three different coupling ratio couplers were used. And the laser was output from the small ratio port. The maximum numbers of the output wavelengths were 13, 14 and 17 with 7 dB,10 dB and 13 dB fluctuation for 50:50, 30:70 and 10:90 couplers, respectively. Besides, the corresponding maximum output power were 0 dBm、-3 dBm and -7 dBm. The results indicate that the output wavelength number is reduced, wavelength spectrum becomes smoother and output power is higher while the output rate of the output coupler is increasing.

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