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PASSIVE AND ACTIVE FIBER OPTIC COMPONENTS (FIBER COUPLERS, MULTIPLEXERS, CRYSTAL FIBERS).

机译:被动和有源光纤组件(光纤耦合器,多路复用器,晶体光纤)。

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摘要

This thesis is concerned with the development and characterization of both passive and active fiber-optic components for applications in single-mode fiber systems, in particular in the new technology of fiber sensors and signal processors. These components include single-mode fiber directional couplers, vital to many optical fiber systems, all-fiber wavelength multiplexers, with potential applications in communication systems and active fiber devices, and single-crystal fiber lasers and amplifiers as miniature light sources and signal regenerators.; The fiber directional couplers involved in this work, fabricated by a polishing process, are described in detail. Experimental characterization of their coupling, loss and unique tuning properties, and their respective dependence on the coupler geometrical parameters, are reported. A theoretical model of fiber-to-fiber coupling is also developed and shown to be a very useful and accurate tool in the design and study of this type of fiber couplers.; The dependence of the coupling properties of fiber couplers on the signal wavelength is studied both theoretically and experimentally for applications in wavelength division multiplexing. All-fiber multiplexers exhibiting a good wavelength selectivity and unique tunability are described and shown to operate according to the coupler model.; Work on active fiber devices explores the potential of the new technology of single-crystal fibers grown by the laser-heated floating-zone technique. The status of crystal fiber growth is reported, together with the basic physical and optical characteristics of these fibers. A theoretical model of the effects of fiber model structure on the gain and laser operation of active fibers is also developed to predict the performance of lasers and amplifiers in a fiber form. Several conceptual pumping schemes are described which offer solutions to the difficult problem of optically pumping small diameter fiber amplifiers. The experimental characterization of high-gain Nd:YAG fiber pulse amplifiers and cw fiber lasers operating at 1064 nm is also reported in detail. These measurements demonstrate the potential of crystal fibers as efficient active devices. Their dominant loss mechanism is identified as propagation loss due to fiber diameter variations, and means of reducing the current loss level are discussed.
机译:本文涉及用于单模光纤系统中的无源和有源光纤组件的开发和特性,特别是在光纤传感器和信号处理器的新技术中。这些组件包括对许多光纤系统至关重要的单模光纤定向耦合器,在通信系统和有源光纤设备中有潜在应用的全光纤波长多路复用器,以及作为微型光源和信号再生器的单晶光纤激光器和放大器。 ;详细介绍了通过抛光工艺制造的光纤定向耦合器。报告了它们的耦合,损耗和独特的调谐特性的实验表征,以及它们各自对耦合器几何参数的依赖性。光纤到光纤耦合的理论模型也被开发出来,并被证明是设计和研究这类光纤耦合器的非常有用和准确的工具。从理论上和实验上研究了光纤耦合器耦合特性对信号波长的依赖性,以用于波分复用。描述并显示了具有良好波长选择性和独特可调谐性的全光纤多路复用器,并根据耦合器模型进行操作。有源光纤器件的工作探索了通过激光加热的浮区技术生长的单晶纤维新技术的潜力。报告了晶体纤维的生长状态,以及这些纤维的基本物理和光学特性。还建立了光纤模型结构对有源光纤的增益和激光操作的影响的理论模型,以预测光纤形式的激光器和放大器的性能。描述了几种概念上的泵浦方案,它们为光学泵浦小直径光纤放大器这一难题提供了解决方案。还详细报道了工作在1064 nm的高增益Nd:YAG光纤脉冲放大器和连续波光纤激光器的实验特性。这些测量证明了晶体纤维作为有效有源器件的潜力。它们的主要损耗机制被确定为由于光纤直径变化引起的传播损耗,并讨论了降低电流损耗水平的方法。

著录项

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 1984
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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