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Eigenmode Expansion Methods for Simulation of Optical Propagation in Photonics - Pros and Cons

机译:特征模拟光子学中光传播模拟的扩展方法 - 优点和缺点

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With the rapid growth of the telecommunications industry over the last 5 to 10 years has come the need to solve ever more complex electromagnetic problems and to solve them more precisely than ever before. The basic EME (EigenMode Expansion) technique is a powerful method for calculation of electromagnetic propagation which has been well known amongst academic environments and also in microwave fields, representing the electromagnetic fields everywhere in terms of a basis set of local modes. It is at the same time a rigorous solution of Maxwell's Equations and is able to deal with very long structures. We discuss here progress that the authors and others have made recently in applying and extending it to integrated, fibre, and diffractive optics - including development of efficient ways of modelling tapers and other smoothly varying structures, new more efficient boundary conditions and improved mode finders. We outline the advantages it has over other techniques and also its limitations. We illustrate its application with a variety of real life examples, including diffractive elements, directional couplers, tapers, MMI's, bend modelling, periodic structures and others.
机译:随着过去5到10年的电信行业的快速增长,已经有必要解决更复杂的电磁问题,并比以往更精确地解决它们。基本EME(EigenMode扩展)技术是计算电磁传播的强大方法,该方法在学术环境中是众所周知的,并且在微波场中,在微波场中表示,在基础集的本地模式方面代表各处的电磁场。它同时是Maxwell方程的严格解决方案,并且能够处理很长的结构。我们在此讨论作者和其他人最近在申请和扩展到集成,光纤和衍射光学方面取得了进展 - 包括开发建模锥度和其他平稳变化的结构,新的更有效的边界条件和改进的模式发现者。我们概述了它超过其他技术的优势以及其限制。我们用各种现实生活示例说明了其应用,包括衍射元件,定向耦合器,锥形,MMI,弯曲建模,周期性结构等。

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