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The construction and computational modeling of a fiber Bragg grating tunable laser diode.

机译:光纤布拉格光栅可调谐激光二极管的构造和计算模型。

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摘要

The widespread adoption of wavelength division multiplexing to increase the bandwidth of optical fiber communication systems has provided a major impetus for research on low cost, single-mode, wavelength stable tunable diode lasers for use in optical telecommunications due to the large volume of lasers required. Other applications, such as demodulation of fiber Bragg grating sensor systems can also make use of inexpensive tunable laser diodes. In addition, the steady increase in the amount of computational power available has led to the widespread use of computers to model physical systems both to predict system performance and to gain insight into physical behavior.; Following a brief review of the application and construction of optical fiber Bragg gratings and a discussion of diode lasers and common methods of tuning diode laser wavelengths, a coupled-cavity approach to modeling laser diode output spectra, the construction of a fiber Bragg grating wavelength tunable laser, and the coupled cavity model of the fiber Bragg grating wavelength tunable diode laser are detailed. The physical laser system consists of a commercial Fabry-Perot diode laser with a cavity length of 300 microns, antireflection coated with a single layer of SiO, and coupled into an optical fiber containing a fiber Bragg grating. Wavelength tuning is accomplished by applying axial strain to the fiber grating. The coupled cavity model directly includes the antireflection coating, includes the fiber Bragg grating as an index step, and is the first reported implementation of this method to model fiber Bragg grating coupled laser diodes. The measured output spectra of the physical laser diode system and the calculated output spectra are given and compared. Continuous tuning of the diode laser by applying axial strain to the fiber grating is not observed nor calculated to occur for a single-layer silicon monoxide antireflection coating. To achieve continuous wavelength tuning, better antireflection coatings will need to be developed.
机译:波分复用技术的广泛采用为增加光纤通信系统的带宽提供了一个主要的动力,这是由于需要大量的激光器,用于光通信中的低成本,单模,波长稳定的可调谐二极管激光器的研究。其他应用,例如光纤布拉格光栅传感器系统的解调,也可以利用廉价的可调谐激光二极管。另外,可用计算能力的稳定增长导致计算机广泛用于对物理系统建模,以预测系统性能并深入了解物理行为。在简要回顾了光纤布拉格光栅的应用和构造,并讨论了二极管激光器和调节二极管激光波长的常用方法之后,采用了耦合腔方法对激光二极管输出光谱进行建模,构造了光纤布拉格光栅波长可调详细介绍了光纤激光器和光纤布拉格光栅波长可调二极管激光器的耦合腔模型。物理激光系统由腔长为300微米的商用Fabry-Perot二极管激光器组成,腔体表面涂有一层SiO减反射膜,并耦合到包含光纤布拉格光栅的光纤中。波长调谐是通过对光纤光栅施加轴向应变来实现的。耦合腔模型直接包括抗反射涂层,包括作为索引步骤的光纤布拉格光栅,并且是该方法首次报道的对光纤布拉格光栅耦合激光二极管建模的方法。给出并比较了物理激光二极管系统的测量输出光谱和计算出的输出光谱。对于单层一氧化硅减反射涂层,没有观察到或未计算出通过对纤维光栅施加轴向应变而连续调谐二极管激光器的情况。为了实现连续的波长调谐,将需要开发更好的抗反射涂层。

著录项

  • 作者

    Winz, Michele W.;

  • 作者单位

    Oregon State University.;

  • 授予单位 Oregon State University.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 p.6146
  • 总页数 104
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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