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A variety of slow-light technologies in nonlinear dispersive media.

机译:非线性色散介质中的各种慢光技术。

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摘要

Over the past few years, researchers have directed a significant amount of effort towards realizing tunable all-optical devices using nonlinear optical methods. It is now possible to exercise dynamic control of the group velocity of light traveling through a wide variety of material systems. The slow and fast light refer to situations in which the group velocity nu g of an optical pulse through a dispersive material can be made to be smaller and larger, respectively, than the phase velocity nup = c/n. This ability could overcome the remaining challenge in current optical networks of storing and manipulating an optical signal directly in optical domain so as to avoid a bottleneck due to optical-to-electrical (O/E) and electrical-to-optical (E/O) conversions.;The overall purpose of the dissertation is to study novel slow-light systems that provide controlled generation of large pulse delays relative to the pulse width with minimal pulse shape distortion by optimally design resonance profiles of such systems. The system design studies utilize several measures of performance such as the fractional delay, power throughput, and signal distortion under the limited system resource constraints. To this end, powerful data fidelity metrics are required to quantify the performance of tunable delay devices. Here, a new framework for measuring an information velocity and throughput is described and implemented using Shannon mutual information concepts. This new technique is used to investigate trends, trade-offs, and limits in slow light devices, which are physically sensible and in good agreement with analyses obtained using a conventional eye-opening (EO) metric.;Using these information-theoretic and/or conventional metrics, we present the quantifying performance of gain-based stimulated Brillouin scattering (SBS) system in optical fibers as well as optical passive devices such as Fabry-Perot, fiber Bragg gratings, and ring resonators. It is shown that combining the SBS gain medium with these passive devices can compensate their respective disadvantages and thus increase delay performance without using additional resource of SBS pump power. The results show the possibility of achieving a fractional delay up to ∼10 at a signal bandwidth up to tens of GHz.
机译:在过去的几年中,研究人员已投入大量精力来使用非线性光学方法来实现可调谐全光学设备。现在可以对通过各种材料系统传播的光的群速度进行动态控制。慢光和快光是指这样的情况,其中,使穿过分散材料的光脉冲的群速度nu g分别小于或大于相速度nup = c / n。此功能可以克服当前在光域中直接存储和处理光信号的光网络中的剩余挑战,从而避免由于光电(O / E)和光电(E / O)造成的瓶颈论文的总体目的是研究新型的慢光系统,该系统通过优化设计此类系统的共振曲线,可相对于脉冲宽度以受控的方式生成相对于脉冲宽度的大脉冲延迟。系统设计研究在有限的系统资源约束下利用了几项性能指标,例如分数延迟,功率吞吐量和信号失真。为此,需要强大的数据保真度指标来量化可调延迟设备的性能。在此,使用香农互信息概念描述并实现了一种用于测量信息速度和吞吐量的新框架。这项新技术用于研究慢速照明设备的趋势,权衡和限制,这些措施在物理上是明智的,并且与使用常规睁眼(EO)度量获得的分析高度吻合;使用这些信息理论和/或常规指标,我们介绍了基于增益的受激布里渊散射(SBS)系统在光纤以及诸如Fabry-Perot,光纤布拉格光栅和环形谐振器等光学无源设备中的量化性能。结果表明,将SBS增益介质与这些无源器件组合在一起可以弥补它们各自的缺点,从而在不使用SBS泵浦功率的额外资源的情况下提高延迟性能。结果表明,在高达数十GHz的信号带宽下,可以实现高达〜10的分数延迟。

著录项

  • 作者

    Lee, Myungjun.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Engineering Electronics and Electrical.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 197 p.
  • 总页数 197
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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