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Design tradeoffs of few-mode step index fiber for next generation mode division multiplexing optical networks

机译:下一代模分复用光网络的少模阶跃折射率光纤的设计折衷

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Next generation few mode fibers (FMF) promise to substantially increase the spectral efficiency of existing state-of-the-art optical communication networks by an order of magnitude [1]. In FMF, individual propagating modes are considered as independent optical communication channels that carry separate streams of data. The performance of these communication streams however, suffers from inter channel interference (ICI) that depends on the physical characteristics of the optical fiber. The ICI mainly results of two impairments, namely the mode coupling and the differential mode delay. It is known that step index (SI) FMF is the less expensive and the easiest to fabricate in addition to having a limited number of physical design parameters, i.e., step refractive index and core diameter. Our objective here is first to investigate the design trade-offs of SI-FMF and then identify the parameters intervals that minimize the inter channel interference by reducing: the mode coupling and the differential mode delay. Our numerical simulation identifies the desired design regions that minimize these impairments separately. Our analysis also illustrates the challenge to minimize both impairments simultaneously and get compromising design solutions.
机译:下一代很少模光纤(FMF)有望将现有的最新光通信网络的频谱效率大幅提高一个数量级[1]。在FMF中,单独的传播模式被视为承载单独数据流的独立光通信信道。然而,这些通信流的性能受到取决于光纤的物理特性的信道间干扰(ICI)的影响。 ICI主要是两个损伤的结果,即模式耦合和差模延迟。众所周知,除了具有有限数量的物理设计参数(即,阶跃折射率和纤芯直径)之外,阶跃折射率(SI)FMF更便宜且最容易制造。我们的目标是首先研究SI-FMF的设计折衷,然后确定参数间隔,以通过减少以下因素来最大程度地减少通道间干扰:模式耦合和差分模式延迟。我们的数值模拟确定了所需的设计区域,这些区域分别将这些损害最小化。我们的分析还说明了同时最小化两种损害并获得折衷的设计解决方案所面临的挑战。

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