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Optical Switch on a Chip: The Talbot Effect, Luneburg Lenses & Metamaterials.

机译:芯片上的光学开关:Talbot效应,Luneburg镜片和超材料。

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摘要

The goal of the research reported in this thesis is to establish the feasibility of a novel optical architecture for an optical route & select circuit switch suitable for implementation as a photonic integrated circuit. The proposed architecture combines Optical Phased Array (OPA) switch elements implemented as multimode interference coupler based Generalised Mach-Zehnder Interferometers (GMZI) with a planar Lüneburg lens-based optical transpose interconnection network implemented using graded metamaterial waveguide slabs. The proposed switch is transparent to signal format and, in principle, can have zero excess insertion loss and scale to large port counts. These switches will enable the low-energy consumption high capacity communications network infrastructure needed to provide environmentally-friendly broadband access to all.;The thesis first explains the importance of switch structures in optical communications networks and the difficulties of scaling to a large number of switch ports. The thesis then introduces the Talbot effect, i.e. the self-imaging of periodic field distributions in free space. It elaborates on a new approach to finding the phase relations between pairs of Talbot image planes at carefully selected positions. The free space Talbot effect is mapped to the waveguide Talbot effect which is fundamental to the operation of multimode interference couplers (MMI). Knowledge of the phase relation between the MMI ports is necessary to achieve correct operation of the GMZI OPA switch elements. An outline of the design procedures is given that can be applied to optimise the performance of MMI couplers and, as a consequence, the GMZI OPA switch elements. The Lüneburg Optical Transpose Interconnection System (LOTIS) is introduced as a potential solution to the problem of excessive insertion loss and cross-talk caused by the large number of crossovers in a switch fabric. Finally, the thesis explains how a Lüneburg lens may be implemented in a graded ‘metamaterial’, i.e. a composite material consisting of ‘atoms’ arranged on a regular lattice suspended in a host by nano-structuring of silicon waveguide slabs using a single etch-step. Furthermore, the propagation of light in graded almost-periodic structures is discussed. Detailed consideration is given to the calibration of the local homogenised effective index; in terms of the local parameters of the metamaterial microstructure in the plane and the corrections necessary to accommodate slab waveguide confinement in the normal to the plane. The concept and designs were verified by FDTD simulation. A 4 × 4 LOTIS structure showed correct routing of light with a low insertion loss of -0.25 dB and crosstalk of -24.12 dB. An -0.45 dB excess loss for 2D analysis and an -0.83 dB insertion excess loss for 3D analysis of two side by side metamaterial Luneburg lenses with diameter of 15 µm was measured, which suggests that the metamaterial implementation produces minimal additional impairments to the switch.
机译:本文报道的研究目的是建立一种适用于实现为光子集成电路的光路和选择电路开关的新型光学架构的可行性。提出的体系结构将实现为基于多模干涉耦合器的广义Mach-Zehnder干涉仪(GMZI)的光相控阵(OPA)开关元件与使用渐变的超材料波导平板实现的基于平面Lüneburg透镜的光学转置互连网络相结合。拟议的交换机对信号格式是透明的,并且原则上可以具有零的额外插入损耗,并且可以扩展到较大的端口数。这些交换机将实现向所有人提供环保宽带接入所需的低能耗,高容量的通信网络基础设施。;论文首先解释了交换机结构在光通信网络中的重要性以及扩展至大量交换机的困难端口。然后论文介绍了Talbot效应,即自由空间中周期场分布的自成像。它详细介绍了一种新方法,可以在经过精心选择的位置上找到成对的Talbot图像平面之间的相位关系。自由空间Talbot效应映射到波导Talbot效应,这对多模干扰耦合器(MMI)的操作至关重要。必须了解MMI端口之间的相位关系,才能正确操作GMZI OPA开关元件。给出了可用于优化MMI耦合器以及GMZI OPA开关元件性能的设计程序的概述。引入Lüneburg光学转置互连系统(LOTIS)作为解决交换结构中大量交叉导致的插入损耗过多和串扰问题的潜在解决方案。最后,论文解释了如何在渐变的“超材料”中实现吕讷堡透镜,即由“原子”组成的复合材料,该“原子”排列在悬浮在主体中的规则晶格上,通过使用单蚀刻法对硅波导板进行纳米结构化步。此外,讨论了光在渐变的几乎周期结构中的传播。详细考虑了局部均质有效指数的校准。根据超材料微观结构在平面中的局部参数以及将平板波导限制在垂直于平面的必要校正。 FDTD仿真验证了该概念和设计。 4×4 LOTIS结构显示出正确的光路由,插入损耗为-0.25 dB,串扰为-24.12 dB。对于直径为15 µm的两个并排超材料Luneburg透镜,进行2D分析时,-0.45 dB的额外损耗,对于3D分析中,则为-0.83 dB的插入损耗,这表明超材料的实现对开关的附加损伤最小。

著录项

  • 作者

    Hamdam, Nikkhah.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 M.Sc.
  • 年度 2013
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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