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Investigation of high-nonlinearity glass fibers for potential applications in ultrafast nonlinear fiber devices.

机译:研究高非线性玻璃纤维在超快非线性纤维器件中的潜在应用。

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摘要

Nonlinear fiber devices have been attracting considerable attention in recent years, due to their inherent ultrafast response time and potential applications in optical communication systems. They usually require long fibers to generate sufficient nonlinear phase shifts, since nonlinearities of conventional silica-core silica-clad fibers are too low. These long devices, however, cause the serious problems of pulse walk-off, pulse broadening, and polarization fluctuation which are major limiting factors for response time, switching bandwidth, and maximum transmittable bit-rate. Therefore, short device length is indispensable for achieving ultrafast switching and higher bit-rate data transmission.; To shorten the required device length, fiber nonlinearities should be increased. In this dissertation, as a way of increasing fiber nonlinearities, high-nonlinearity materials of Litharge, Bismite, Tellurite, and Chalcogenide glasses have been considered. Although they have high nonlinearities, they also have high group-velocity dispersion and high losses deteriorating the performance of nonlinear fiber devices seriously. The aim of this work is to investigate how these high-nonlinearity glasses affect the performance of nonlinear fiber devices, taking into consideration both the advantages and disadvantages. To achieve it, the critical properties of various nonlinear fiber devices constructed with the different types of high-nonlinearity glasses and different types of fibers have been evaluated.; It turned out that the required device lengths of nonlinear fiber devices constructed with the high-nonlinearity glasses were significantly reduced and high group-velocity dispersions and losses could not be major problems due to the extremely short device length. As a result, it would be possible to suppress the problems of pulse walk-off, pulse broadening, and polarization fluctuation in nonlinear fiber devices by introducing high-nonlinearity glasses, thus enabling ultrafast switching and higher bit-rate data transmission.; Furthermore, in this dissertation, a new scheme of wavelength-division demultiplexing based on the optical Kerr effect has been proposed for the first time. The new scheme can turn the disadvantage of the extremely high group-velocity dispersion of high-nonlinearity glasses into an advantage of wavelength-division demultiplexing. Finally, it now would be possible to greatly increase maximum transmittable bit-rate in optical communication systems by simultaneously demultiplexing optical time-division-multiplexed signals and wavelength-division-multiplexed signals with an optical Kerr effect-based demultiplexer.
机译:非线性光纤设备由于其固有的超快响应时间和在光通信系统中的潜在应用,近年来已引起相当大的关注。它们通常需要长纤维才能产生足够的非线性相移,因为常规的二氧化硅芯二氧化硅包覆的纤维的非线性度太低。但是,这些长器件会引起严重的脉冲偏移,脉冲展宽和极化波动问题,这些问题是响应时间,开关带宽和最大可传输比特率的主要限制因素。因此,短的设备长度对于实现超快的切换和更高的比特率数据传输是必不可少的。为了缩短所需的设备长度,应增加光纤的非线性度。在本文中,作为增加纤维非线性的一种方法,已经考虑了Litharge,Bismite,碲铁矿和硫属化物玻璃的高非线性材料。尽管它们具有很高的非线性度,但它们也具有很高的群速度色散和高损耗,从而严重恶化了非线性光纤器件的性能。这项工作的目的是研究这些高非线性玻璃如何影响非线性光纤设备的性能,同时考虑其优缺点。为了达到这个目的,已经评估了由不同类型的高非线性玻璃和不同类型的纤维构成的各种非线性纤维装置的临界性能。结果表明,由高非线性玻璃构成的非线性光纤器件所需的器件长度已显着减少,并且由于极短的器件长度,高的群速度色散和损耗不会成为主要问题。结果,通过引入高非线性眼镜,可以抑制非线性光纤器件中的脉冲偏离,脉冲展宽和偏振波动的问题,从而实现超快的切换和更高的比特率数据传输。此外,本文首次提出了一种基于光学克尔效应的波分复用新方案。新方案可以将高非线性玻璃的极高群速度色散的缺点变成波分多路分解的优点。最终,现在可以通过同时使用基于光学克尔效应的解复用器对光时分复用信号和波分复用信号进行解复用来大大提高光通信系统中的最大可传输比特率。

著录项

  • 作者

    Kim, Jong-Kook.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Electronics and Electrical.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 323 p.
  • 总页数 323
  • 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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