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Planar lightwave circuits employing coupled waveguides in aluminum gallium arsenide.

机译:在砷化铝镓中采用耦合波导的平面光波电路。

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摘要

This dissertation addresses three research challenges in planar lightwave circuit (PLC) optical signal processing.;2. The PLC microresonator promises to reduce PLC device size and increase optical signal processing functionality. Microresonators in a parallel cascaded configuration, called "side coupled integrated spaced sequence of resonators" (SCISSORs), could offer very interesting dispersion compensation abilities, if a sufficient number of rings is present to produce fully formed "Bragg" gaps. To date, a SCISSOR with only three rings has been reported in a high-index material system. In this work, one, two, four and eight-ring SCISSORs were fabricated in AlGaAs. The eight-ring SCISSOR succeeded in producing fully formed Bragg peaks, and offers a platform to study interesting linear and nonlinear phenomena such as dispersion compensators and gap solitons.;3. PLCs are ideal candidates to satisfy the projected performance requirements of future microchip interconnects. In addition to data routing, these PLCs must provide over 100-bit switchable delays operating at ∼ 1 Tbit/s. To date, no low loss optical device has met these requirements. To address this challenge, an ultrafast, low loss, switchable optically controllable delay line was fabricated in AlGaAs, capable of delaying 126 bits, with a bit-period of 1.5 ps. This successful demonstrator offers a practical solution for the incorporation of optics with microelectronics systems.;The three aforementioned projects all employ, in their unique way, the coupling of light between PLC waveguides in AlGaAs. This central theme is explored in this dissertation in both its two- and multi-waveguide embodiments.;1. Dynamic localization, a relatively new class of quantum phenomena, has not been demonstrated in any system to date. To address this challenge, the quantum system was mapped to the optical domain using a set of curved, coupled PLC waveguides in aluminum gallium arsenide (AlGaAs). The devices demonstrated, for the first time, exact dynamic localization in any system. These experiments motivate further mappings of quantum phenomena in the optical domain, leading toward the design of novel optical signal processing devices using these quantum-analog effects.
机译:本文针对平面光波电路(PLC)光信号处理中的三个研究挑战。2。 PLC微谐振器有望减小PLC设备的尺寸并增加光信号处理功能。如果存在足够数量的环以产生完全形成的“布拉格”间隙,则并联级联配置中的微谐振器(称为“侧耦合谐振器的侧向积分间隔序列”)可以提供非常有趣的色散补偿能力。迄今为止,已经在高折射率材料系统中报告了仅具有三个环的SCISSOR。在这项工作中,在AlGaAs中制造了一个,两个,四个和八个环的剪刀。八环SCISSOR成功地产生了完全形成的布拉格峰,并提供了一个平台来研究有趣的线性和非线性现象,例如色散补偿器和间隙孤子。3。 PLC是满足未来微芯片互连的预期性能要求的理想选择。除了数据路由之外,这些PLC还必须提供超过100位的可切换延迟,并以〜1 Tbit / s的速度运行。迄今为止,还没有低损耗光学器件满足这些要求。为了解决这一挑战,在AlGaAs中制造了一条超快,低损耗,可切换的光学可控延迟线,该延迟线能够延迟126位,位周期为1.5 ps。这个成功的演示器为将光学系统与微电子系统结合提供了实用的解决方案。上述三个项目都以独特的方式采用了AlGaAs中PLC波导之间的光耦合。在本论文的两个和多个波导实施例中都探讨了这个中心主题。动态定位是一种相对较新的量子现象,迄今尚未在任何系统中得到证明。为了解决这一挑战,使用一组砷化铝镓(AlGaAs)中弯曲的耦合PLC波导将量子系统映射到光域。这些设备首次展示了在任何系统中的精确动态定位。这些实验激发了光现象在光域中的进一步映射,从而导致了使用这些量子模拟效应的新型光信号处理设备的设计。

著录项

  • 作者

    Iyer, Rajiv.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 177 p.
  • 总页数 177
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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