Theoretical Analysis of The Super-Gaussian Pulse Propagation in Solid-Core Photonic Crystal Fiber

Mohammed Salim Jasim الطائي
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Abstract

Fiber optics have been greatly enhanced by photonic crystal fibers based on microstructure air-glass designs. On the one hand, such fibers enable highly tight light confine in a small mode shape region, resulting in significantly improved alternative options between light and dielectric medium. Photonic crystal fibers, on the other hand, allow light to be guided via air cores instead of glass. As a result, the latter form of fiber decreases of optical nonlinearities in ways that classic fiber designs cannot. The chirp effect and dispersion of photonic crystal fibers with super-Gaussian pulses during various pulses durations are examined in this paper. In both normal and anomalous dispersion patterns. As done the chirp effect and fiber dispersive nonlinear effects are investigated. For this study, the mathematical model of the solution of nonlinear equation is split-step Fourier method. The peak power reduces for broad pulses. When the magnitude of the super-Gaussian pulse increasing proportion, the pulse constriction is also noticeable, Furthermore, these results disclose important facts, such as the fact that an anomalous dispersion system is superior to a regular dispersion system for pulse. These findings are incredibly useful in learning more about photonic crystal fiber and improving data speeds in modern optical communication systems.
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超高斯脉冲在固芯光子晶体光纤中的传输理论分析
基于微结构空气玻璃设计的光子晶体光纤极大地增强了光纤的性能。一方面,这种光纤使高度紧密的光限制在一个小的模形区域,从而大大改善了光和介电介质之间的替代选择。另一方面,光子晶体光纤允许光通过空气芯而不是玻璃来引导。因此,后一种形式的光纤以传统光纤设计无法达到的方式减少了光学非线性。本文研究了超高斯脉冲光子晶体光纤在不同脉冲持续时间下的啁啾效应和色散。在正常和异常色散模式。同时研究了啁啾效应和光纤色散非线性效应。在本研究中,非线性方程解的数学模型是分步傅里叶法。宽脉冲的峰值功率降低。当超高斯脉冲的幅度增大比例时,脉冲收缩也很明显。这些结果揭示了反常色散系统优于规则色散系统的重要事实。这些发现对于进一步了解光子晶体光纤和提高现代光通信系统的数据速度非常有用。
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