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Using Finite Element and Eigenmode Expansion Methods to Investigate the Periodic and Spectral Characteristic of Superstructure Fiber Bragg Gratings

机译:用有限元和本征模展开法研究超结构光纤布拉格光栅的周期和光谱特性

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摘要

In this study, a numerical simulation method was employed to investigate and analyze superstructure fiber Bragg gratings (SFBGs) with five duty cycles (50%, 33.33%, 14.28%, 12.5%, and 10%). This study focuses on demonstrating the relevance between design period and spectral characteristics of SFBGs (in the form of graphics) for SFBGs of all duty cycles. Compared with complicated and hard-to-learn conventional coupled-mode theory, the result of the present study may assist beginner and expert designers in understanding the basic application aspects, optical characteristics, and design techniques of SFBGs, thereby indirectly lowering the physical concepts and mathematical skills required for entering the design field. To effectively improve the accuracy of overall computational performance and numerical calculations and to shorten the gap between simulation results and actual production, this study integrated a perfectly matched layer (PML), perfectly reflecting boundary (PRB), object meshing method (OMM), and boundary meshing method (BMM) into the finite element method (FEM) and eigenmode expansion method (EEM). The integrated method enables designers to easily and flexibly design optical fiber communication systems that conform to the specific spectral characteristic by using the simulation data in this paper, which includes bandwidth, number of channels, and band gap size.
机译:在这项研究中,采用数值模拟方法来研究和分析具有五个占空比(50%,33.33%,14.28%,12.5%和10%)的超结构光纤布拉格光栅(SFBG)。这项研究的重点是证明所有占空比的SFBG的设计周期与SFBG的频谱特性(以图形形式)之间的相关性。与复杂且难以学习的常规耦合模式理论相比,本研究的结果可以帮助初学者和专家设计人员了解SFBG的基本应用方面,光学特性和设计技术,从而间接降低物理概念和进入设计领域所需的数学技能。为了有效提高整体计算性能和数值计算的准确性并缩短仿真结果与实际生产之间的差距,本研究集成了完美匹配层(PML),完美反射边界(PRB),对象网格划分方法(OMM)和边界网格划分法(BMM)分为有限元方法(FEM)和本征模展开法(EEM)。该集成方法使设计人员能够通过使用本文中的仿真数据轻松,灵活地设计符合特定频谱特性的光纤通信系统,其中包括带宽,通道数和带隙大小。

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