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Application of Spatial Modes in Advanced Optical Communications and Networking

机译:空间模式在高级光通信和网络中的应用

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摘要

To satisfy the ever-increasing demands for high speed networks, the spatial dimension is exploited to increase the capacity of the communication systems. Optical waves with spatial orthogonality can serve as independent transmission channels after they are multiplexed together, and this technique is called as spatial division multiplexing (SDM). SDM can be realized in both fiber and free space optical channels. Spatial modes can consist of: multiple parallel beams in a multicore fiber, different orders of the fiber's eigenmodes in a multimode fiber, and orthogonal modes, such as Laguerre Gaussian modes. Although SDM is a very promising option to achieve a large capacity network, however there are still many problems to be solved before it can be implemented in real applications. In this dissertation, SDM is investigated from the transmission level to the network level perspective.;In the first part of this dissertation, we have verified a strong correlation between the crosstalk intensity and the statistical characterization of the signal in optical fibers and developed a novel method for monitoring in-service channel crosstalk. Also, as for the application in the free space optical channels (FSO), by adopting the Kolmogorov model of turbulence we established and experimentally verified a relationship between the wavefront error variance and the phase structure function that can be directly applied to estimate the atmospheric coherence diameter and the refraction-index structure constant.;The second part of the dissertation focuses on SDM employment in two relevant topologies of optical networks (i.e. metro/core segment and a comprehensive architecture that consists of core/metro and access network segments). We investigated and proposed an optimized design and assignment strategy for the resource allocation in multidimensional networking structure with plurality of spectral and spatial components that also includes a dynamic interaction between spectral and spatial modes.
机译:为了满足对高速网络不断增长的需求,利用空间维度来增加通信系统的容量。具有空间正交性的光波在复用在一起后可以用作独立的传输通道,这种技术称为空分复用(SDM)。 SDM可以在光纤和自由空间光通道中实现。空间模式可以包括:多芯光纤中的多个平行光束,多模光纤中光纤本征模式的不同阶数以及正交模式(例如Laguerre高斯模式)。尽管SDM是实现大容量网络的一个非常有前途的选择,但是,在实际应用中实现SDM之前,仍有许多问题需要解决。本文从传输层面到网络层面对SDM进行了研究。在论文的第一部分,我们验证了串扰强度与光纤信号统计特性之间的强相关性,并提出了一种新的方法。服务中信道串扰的监控方法。此外,对于在自由空间光信道(FSO)中的应用,通过采用Kolmogorov湍流模型,我们建立并实验验证了波前误差方差与可直接用于估算大气相干性的相位结构函数之间的关系。论文的第二部分重点研究了光网络的两种相关拓扑结构(即城域/核心网和由核心/城域网和接入网组成的综合架构)中的SDM应用。我们研究并提出了具有多个光谱和空间成分的多维网络结构中资源分配的优化设计和分配策略,其中还包括光谱和空间模式之间的动态相互作用。

著录项

  • 作者

    Gao, Wenbo.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Optics.;Information technology.;Electrical engineering.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 129 p.
  • 总页数 129
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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