A simple method for study of effect of Kerr nonlinearity on effective core area, index of refraction and fractional modal power through the core of monomode graded index fibre

Q4 Engineering
Mithun Maity, A. Maiti, Himadri S. Mandal, S. Gangopadhyay
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引用次数: 0

Abstract

Using the simple power series expression for fundamental modal field derived by Chebyshev technique, we present investigation of some important propagation parameters like effective core area, index of refraction and fractional modal power guided through the core of single-mode graded index fibre in presence of Kerr nonlinearity. In absence of nonlinearity, the said power series expression leads to prescription of analytical expressions of the concerned propagation parameters. Employing those analytical expressions, we apply iterative method in order to evaluate the said parameters in presence of Kerr nonlinearity. Choosing some typical single-mode step and parabolic index fibres for our study, we verify that the results obtained by our simple formalism match excellently with the exact results which are obtainable by applying rigorous finite element technique. This excellent agreement attests to the accuracy of our formalism. Further, our formalism requires little computation in the context of evaluation of the said parameters. Accordingly, our formalism can be considered as a simple but accurate alternative to the existing complicated methods available in literature. Thus, this user-friendly but accurate formalism will benefit the system engineers in respect of selection of suitable fibre in which modal noise due to nonlinearity is minimum.
研究单模渐变折射率光纤Kerr非线性对有效纤芯面积、折射率和分数模功率影响的一种简单方法
利用切比雪夫技术导出的基本模态场的简单幂级数表达式,研究了在存在克尔非线性的情况下,单模渐变折射率光纤纤芯中的有效纤芯面积、折射率和分数模态功率等重要传播参数。在没有非线性的情况下,所述幂级数表达式导致相关传播参数的解析表达式的规定。利用这些解析表达式,我们应用迭代方法来评估存在Kerr非线性的上述参数。选择一些典型的单模阶跃和抛物型折射率光纤进行研究,我们验证了用我们的简单形式获得的结果与用严格的有限元技术获得的精确结果非常匹配。这份出色的协议证明了我们形式主义的准确性。此外,我们的形式主义在评估所述参数的上下文中几乎不需要计算。因此,我们的形式主义可以被认为是一种简单但准确的替代文献中现有的复杂方法的方法。因此,这种用户友好但准确的形式将有利于系统工程师选择合适的光纤,其中由非线性引起的模态噪声最小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Nanoparticles
International Journal of Nanoparticles Engineering-Mechanical Engineering
CiteScore
1.60
自引率
0.00%
发文量
15
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