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Efficient femtosecond pulse generation using a parabolic amplifier combined with a pulse compressor. I. Stimulated Raman-scattering effects

机译:使用抛物线放大器与脉冲压缩器结合可有效产生飞秒脉冲。一,拉曼散射效应

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摘要

The effects of stimulated Raman scattering on femtosecond pulse generation using a parabolic amplifier and a grating-pair compressor are presented. We derive an explicit analytical form for the Stokes pulse evolution. We find that the evolution of the Stokes pulse can be divided into four regimes; small Gaussian Stokes pulse, small asymmetric Stokes pulse, signal depletion, and parabolic Raman pulse. To achieve efficient pulse compression, one should operate the parabolic amplifier in the small Stokes pulse regime where the signal pulse is not seriously distorted. We also derive an analytical expression to obtain a critical fiber length for the small Stokes pulse regime. The derived theory is applied to a realistic high-power femtosecond pulse generation process through a split-step Fourier numerical simulation. The pulse compression results confirm that our derived critical fiber length leads to the highest peak power and shortest width of compressed pulse. (c) 2006 Optical Society of America.
机译:提出了使用抛物线放大器和光栅对压缩器,受激拉曼散射对飞秒脉冲产生的影响。我们得出斯托克斯脉冲演化的显式分析形式。我们发现斯托克斯脉冲的演化可以分为四个区域。高斯斯托克斯小脉冲,非对称斯托克斯小脉冲,信号耗竭和抛物线拉曼脉冲。为了实现有效的脉冲压缩,应该在信号脉冲没有严重失真的小斯托克斯脉冲状态下操作抛物线放大器。我们还导出了一个解析表达式,以获取小斯托克斯脉冲模式的临界光纤长度。通过分步傅立叶数值模拟,将派生的理论应用于实际的高功率飞秒脉冲产生过程。脉冲压缩结果证实了我们得出的临界光纤长度导致了最高的峰值功率和最短的压缩脉冲宽度。 (c)2006年美国眼镜学会。

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