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On the Efficiency of Parabolic Self-Similar Pulse Evolution in Fiber Amplifiers with Gain Shaping

机译:具有增益整形的光纤放大器中抛物线型自相似脉冲演化的效率

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摘要

We numerically and experimentally demonstrate the influences of gain fiber length, initial pulse center wavelength, duration, chirp, and temporal profile for efficient parabolic self-similar evolution, accounting for the strong gain shaping effect in fiber amplifiers under high gains. A spectrally resolved numerical model allowing for realistic descriptions of the variable wavelength-dependent gain is developed. The results predict the specific regions of the initial center wavelength and the duration for the self-similar evolution, which move toward a longer center wavelength and a broader duration range with the increasing gain fiber length. For short-length high-gain amplifiers, a proper negative initial chirp can not only resist the gain-shaping deformation and facilitate the self-similar evolution but also provide a broadband output. In addition, a triangular initial profile is found to be of minimum sensitivity to the detrimental gain shaping and optimum for efficient self-similar evolution. The experimental results confirm the numerical predictions. The studies of the fast parabolic pulse formation in short-length high-gain amplifiers presented here demonstrate the potential for performance scaling of femtosecond fiber amplifiers, few-cycle pulse sources, high-power frequency combs, and related applications.
机译:我们通过数值和实验证明了增益光纤长度,初始脉冲中心波长,持续时间,线性调频和时间分布对于抛物线型自相似进化的影响,这说明了高增益下光纤放大器的强大增益整形效应。开发了一种光谱解析的数值模型,可以对可变的依赖于波长的增益进行实际描述。结果预测了初始中心波长的特定区域和自相似演化的持续时间,随着增益光纤长度的增加,这些区域将朝着更长的中心波长和更宽的持续时间范围移动。对于短长度的高增益放大器,适当的负初始rp不仅可以抵抗增益整形,并促进自相似演化,而且还可以提供宽带输出。另外,发现三角形的初始轮廓对有害的增益整形具有最小的灵敏度,并且对于有效的自相似演化是最佳的。实验结果证实了数值预测。本文介绍的对短长度高增益放大器中快速抛物线形脉冲形成的研究证明了飞秒光纤放大器,少周期脉冲源,高功率频率梳及其相关应用的性能缩放潜力。

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