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Spectroscopic multiple-vibrational modeling of Raman gain in FRA

机译:FRA中拉曼增益的光谱多振动建模

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Fiber Raman amplifiers with the theoretical limit of gain bandwidth up to 12 THz are becoming more and more essential in wavelength-division-multiplexing optical communication systems with terabit capacity. In this work, the new spectroscopic model for the Raman gain spectrum decomposition in arbitrary optical fiber using multiple vibrational modes is presented. Modeling results is given for the development of stimulated Raman gain spectrum in silica fiber. Nonlinear fitting procedure with Levenberg-Marquardt method of Raman gain profile was applied and it gives practically exact approximation of the observed Raman gain spectrum in silica fiber. The integrated intensities of model spectra are coincided with experimental spectrum within <0.3%. The optimal set of Raman gain parameters is compiled to simple analytical expressions that can be integrated and differentiated in symbolic form and are easy to evaluate numerically. Modeling results on the set of basic Raman amplifier characteristics such us: gain ripple, bandwidth, group delay, and noise performance is presented. Model is applicable to FRA design in fiber materials with known SRS spectra of any complexity.
机译:光纤拉曼放大器具有高达12星的增益带宽的理论极限在具有T比容量的波分复用光通信系统中变得越来越多。在这项工作中,提出了使用多种振动模式的任意光纤中拉曼增益谱分解的新光谱型模型。给出了刺激拉曼增益光谱的模拟结果。应用了Levenberg-Marquardt方法的非线性拟合程序,施加了拉曼增益轮廓的方法,它几乎精确地近似于二氧化硅纤维中的观察拉曼增益光谱。模型光谱的综合强度在<0.3%内恰逢实验频谱。最佳的拉曼增益参数集编译成简单的分析表达式,可以以符号形式集成和分化,并且易于以数字方式进行评估。建模结果对诸如US:增益纹波,带宽,组延迟和噪声性能的模拟结果。模型适用于纤维材料的FRA设计,具有任何复杂性的已知SRS光谱。

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