首页|基于相位调制的窄线宽光纤激光器受激布里渊散射效应抑制技术

基于相位调制的窄线宽光纤激光器受激布里渊散射效应抑制技术

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在不同调制参数变化的条件下,研究了白噪声信号(WNS)和伪随机二进制序列(PRBS)相位调制对窄线宽光纤激光器的光谱半峰全宽和受激布里渊散射(SBS)阈值的影响。实验结果表明,在仅对种子源进行功率缩放时未出现自脉冲效应。对于不同的调制信号,调制参数的变化对线宽和SBS阈值的影响差异较大。PRBS相位调制比WNS更不易出现自脉冲效应;级联WNS相位调制比单级WNS具有更高的SBS阈值。同时,对种子源进行相位调制,采用三级主振荡功率放大结构,搭建线偏振全光纤激光器系统,在1055 nm中心波长处实现了0。081 nm(21。8 GHz)的线宽,斜率效率高达87。0%,偏振消光比大于13。5 dB,在激光输出功率为1。25 kW时未出现SBS效应和自脉冲效应,SBS阈值增强因子为57。8。通过对比实验,给出了不同调制信号的参数分析,进而为窄线宽光纤激光器相位调制系统方案的选择提供参考。
Stimulated Brillouin Scattering Suppression Techniques for Narrow-Linewidth Fiber Lasers Based on Phase Modulation
Objective Narrow-linewidth fiber lasers have a wide range of applications in fields such as long-distance communication,nonlinear frequency conversion,and gravitational wave detection.To achieve higher output power,beam synthesis techniques are used to combine multiple fiber lasers into a single beam.However,nonlinear effects limit the scalability in high-power narrow-linewidth fiber lasers.Among these effects,stimulated Brillouin scattering(SBS)has the lowest threshold and can induce self-pulsing,characterized by high peak power,narrow pulse width,and randomness.The master oscillator power amplifier(MOPA)structure,utilizing a phase-modulated single-frequency laser seed source,effectively suppresses the SBS effect without significantly broadening the linewidth during multistage amplification.Therefore,it is crucial to investigate the influence of different phase modulation techniques on SBS suppression.Methods To study the effects of different phase modulation methods on spectral linewidth and the SBS threshold,we construct a linearly polarized,narrow-linewidth,all-fiber laser system.This system includes a phase-modulated single-frequency laser,a two-stage linearly polarized preamplifier,and a one-stage linearly polarized main amplifier.The phase modulation module includes a white noise signal source,a pseudo-random binary sequence(PRBS)signal source,a low-pass filter,an RF amplifier,and an electro-optical modulator.By varying the modulation frequency and other parameters of these two signals,we observe changes in spectral linewidth and SBS threshold.In addition,the power and spectra of the output laser and backscattered light are measured and converted into time-domain signals for a detailed analysis of their characteristics.Results and Discussions In the linearly polarized narrow-linewidth fiber laser system,no self-pulsing effect occurs before or after the SBS threshold is reached when the unmodulated single-frequency narrow-linewidth fiber laser is amplified(Fig.2).However,with white noise signal(WNS)phase modulation,the self-pulsing effect can occur before the output power reaches the SBS threshold(Fig.3).Increasing the modulation frequency broadens the linewidth and raises the SBS threshold(Fig.4).However,as modulation depth increases,the linewidth continues to widen,and the SBS threshold,which initially rises,eventually decreases.Cascaded WNS phase modulation performs better by achieving a higher SBS threshold at a similar linewidth compared to single-stage WNS phase modulation(Fig.5).PRBS phase modulation is less prone to inducing the self-pulsing(Fig.7).Shorter PRBS code lengths result in narrower linewidths and higher SBS thresholds(Fig.8).As the modulation frequency increases,the SBS threshold initially rises and then decreases(Fig.9).The modulation depth significantly affects the linewidth,and both linewidth and SBS threshold are positively correlated with modulation depth(Fig.10).Finally,by applying phase modulation to the seed source and using a three-stage MOP A structure,a linearly polarized all-fiber laser system is built.This system achieves a linewidth of 0.081 nm(21.8 GHz)at a central wavelength of 1055 nm,with a slope efficiency as high as 87.0%and a polarization extinction ratio(PER)exceeding 13.5 dB.At a laser output power of 1.25 kW,no SBS effect or self-pulsing is observed,and the SBS threshold enhancement factor reaches 57.8(Figs.11-13).Conclusions In this paper,we experimentally investigate the effects of different modulation modes and the variation of modulation parameters on the linewidth and SBS threshold of high-power narrow-linewidth fiber lasers.Before modulation,single-frequency lasers are less prone to generating a self-pulsing effect.WNS phase modulation can produce a much wider linewidth than the modulation frequency,is easily adjustable,and offers a high SBS threshold.Cascaded WNS phase modulation can enhance the SBS threshold by around 25.1%while maintaining a similar linewidth,thereby supporting higher laser output power.PRBS phase modulation is less likely to induce self-pulsing,resulting in a slightly wider linewidth than the modulation frequency,making it more suitable for high-power narrow-linewidth fiber lasers.A shorter PRBS code length provides better SBS suppression.Appropriately increasing the modulation frequency and depth can enhance the SBS threshold for both phase modulation methods.Finally,a linearly polarized,narrow-linewidth,all-fiber laser system with a center wavelength of 1055 nm is built using cascaded WNS phase modulation in a three-stage amplified MOPA structure.This system achieves an SBS threshold enhancement factor of 57.8,with no self-pulsing or SBS effects at a laser output power of 1.25 kW,a line width of 0.081 nm(21.8 GHz),a slope efficiency of 87.0%,a signal-to-noise ratio of 32 dB,and a PER of 13.5 dB.These findings provide a crucial experimental foundation for the development of phase modulation systems and beam synthesis techniques for high-power narrow-linewidth fiber lasers.

phase modulationnarrow-linewidth fiber laserstimulated Brillouin scattering effectself-pulsing effect

欧琢璐、丁亚茜、文建湘、王鑫玥、张小贝、庞拂飞

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上海大学通信与信息工程学院特种光纤与光接入网省部共建国家重点实验室培育基地,特种光纤与先进通信国际合作联合实验室,上海 200444

中国电子科技集团公司第二十三研究所,上海 200437

相位调制 窄线宽光纤激光器 受激布里渊散射效应 自脉冲效应

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(23)