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Development of linear and nonlinear components for integrated optical signal processing.

机译:开发用于集成光信号处理的线性和非线性组件。

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摘要

Optical processors have potentially a major advantage over electronic processors because of their tremendous bandwidth. Massive parallelism is another inherent advantage of optical processors. However, it is traditionally demonstrated with free space components and seldom used for integrated optical signal processing. In this thesis, we consider spatial domain signal processing in guided wave structures, which brings a new dimension to the existing serial signal processing architecture and takes advantage of the parallelism in optics. A novel class of devices using holograms in multimode channel waveguides is developed in this work.; Linear optical signal processing using multimode waveguide holograms (MWHs) is analyzed. We focus on discrete unitary transformations to take advantage of the discrete nature of modes in multimode waveguides. We prove that arbitrary unitary transformations can be performed using holograms in multimode waveguides. A model using the wide-angle beam propagation method (WA-BPM) is developed to simulate the devices and shows good agreement with the theory. The design principle of MWH devices is introduced. Based on the design principle, BPM models are used to design several devices including a mode-order converter, a Hadamard transformer, and an optical pattern generator/correlator. Optical pattern generators are fabricated to verify the theory and the model. Also, the bandwidth and fabrication tolerance of MWH devices are also analyzed.; Also, we examine the nonlinear optical switches which allow the integration of MWHs into modern optical communication networks. A simple optical setup using an imaged 2-D phase grating is developed for characterization of the complex third-order nonlinearity chi(3) to identify suitable nonlinear materials for integrated optical switches. This technique provides a reliable way to characterize chi(3) as new materials are constantly being developed.; Finally, we demonstrate the concept of optical switching using XPM in segmented semiconductor optical amplifiers (SOA) based on the proven technology of semiconductor waveguides. Segmented SOA switches allow the counter-propagation of control and signal pulses in the switch and avoid the problem of parasitic oscillations encountered in high gain SOA switches. A prototype device is experimentally characterized to demonstrate the concept, and a model is developed to obtain optimal parameters for future devices.
机译:光学处理器由于其巨大的带宽,可能比电子处理器具有主要优势。大规模并行是光学处理器的另一个固有优势。但是,传统上使用自由空间组件进行演示,并且很少用于集成光信号处理。在本文中,我们考虑了导波结构中的空间域信号处理,这为现有的串行信号处理架构带来了新的维度,并利用了光学中的并行性。在这项工作中,开发了一种在多模信道波导中使用全息图的新型设备。分析了使用多模波导全息图(MWH)的线性光信号处理。我们专注于离散unit变换,以利用多模波导中模的离散性质。我们证明了可以在多模波导中使用全息图执行任意unit变换。建立了使用广角光束传播方法(WA-BPM)的模型来仿真设备,并与理论相吻合。介绍了MWH设备的设计原理。根据设计原理,BPM模型用于设计多种设备,包括模式顺序转换器,Hadamard变压器和光学图形发生器/相关器。制造光学图案发生器以验证理论和模型。此外,还分析了MWH器件的带宽和制造公差。此外,我们研究了允许将MWH集成到现代光通信网络中的非线性光开关。开发了一种使用成像的二维相位光栅的简单光学装置,用于表征复杂的三阶非线性chi(3),以识别适用于集成光学开关的非线性材料。随着新材料的不断开发,该技术提供了一种表征chi(3)的可靠方法。最后,我们基于成熟的半导体波导技术,演示了在分段半导体光放大器(SOA)中使用XPM进行光交换的概念。分段SOA开关允许在开关中反向传播控制和信号脉冲,并避免了高增益SOA开关中遇到的寄生振荡问题。对原型设备进行了实验表征以证明这一概念,并开发了一个模型来为将来的设备获得最佳参数。

著录项

  • 作者

    Tseng, Shuo-Yen.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Engineering Electronics and Electrical.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 169 p.
  • 总页数 169
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;光学;
  • 关键词

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