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Finite-difference full-vectorial beam propagation method development and microlens design for fiber to laser diode coupling.

机译:光纤到激光二极管耦合的有限差分全矢量光束传播方法开发和微透镜设计。

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摘要

The first part of this work is related to the development of the finite-difference full-vectorial beam propagation method (FD-FV-BPM), which is one of the most popularly used simulation tools for optical waveguides and circuits design. Firstly, the general FD formula of the FD-FV-BPM is reviewed and demonstrated for computing the fundamental modes of an index-guiding photonic crystal fiber. The numerical accuracy and convergence behavior of the FV-FD-BPM for modal index calculation are detailedly investigated. Secondly, an improved FD-FV-BPM is introduced with a dramatic improvement in accuracy compared to the conventional methods. This method is developed based on the generalized Douglas scheme and novel FD formulas for the cross-coupling terms. The much higher accuracy is demonstrated by testing it on a strongly-guiding rib waveguide.; The second part of this work is related to microlens design for fiber to laser diode coupling. Three types of microlens design are developed, i.e., modified wedge-shaped fiber lens design for single-mode fiber to 980nm laser diode coupling, graded-index fiber taper design for single-mode fiber to 1350nm or 1550nm laser diode coupling, and ideal microlens design for flatting the equiphase distribution of a Gaussian laser beam. The first two of the three types of microlens design are demonstrated with a nearly 90% efficiency for fiber to laser diode coupling, while the lens profiles are simple and easy to fabricate. The third type shows a perfect and high-accuracy microlens profile, which is capable of completely flatting the equiphase distribution of a Gaussian laser beam even under long working distance (>500mum). The ideal microlens design enables a nearly 100% efficiency of fiber to laser diode coupling. All the designs are based on the accurate wide-angle BPM simulation.
机译:这项工作的第一部分与有限差分全矢量光束传播方法(FD-FV-BPM)的开发有关,该方法是用于光波导和电路设计的最常用的仿真工具之一。首先,对FD-FV-BPM的通用FD公式进行了回顾和论证,以用于计算折射率光子晶体光纤的基本模式。详细研究了用于模态指数计算的FV-FD-BPM的数值精度和收敛行为。其次,引入了改进的FD-FV-BPM,与传统方法相比,其准确性有了显着提高。该方法是基于广义Douglas方案和用于交叉耦合项的新颖FD公式开发的。通过在强力引导的肋形波导上进行测试可以证明其具有更高的精度。这项工作的第二部分与光纤到激光二极管耦合的微透镜设计有关。开发了三种类型的微透镜设计,即用于单模光纤到980nm激光二极管耦合的改进的楔形光纤透镜设计,用于单模光纤到1350nm或1550nm激光二极管耦合的渐变折射率光纤锥形设计以及理想的微透镜设计用于平整高斯激光束的等相分布。演示了三种微透镜设计中的前两种,光纤到激光二极管的耦合效率接近90%,而透镜轮廓则简单易制造。第三种类型显示了完美且高精度的微透镜轮廓,即使在长工作距离(> 500mum)下,也能够完全平坦高斯激光束的等相分布。理想的微透镜设计使光纤到激光二极管的耦合效率接近100%。所有设计均基于精确的广角BPM仿真。

著录项

  • 作者

    He, Yongzhi.;

  • 作者单位

    University of California, Irvine.;

  • 授予单位 University of California, Irvine.;
  • 学科 Physics Optics.; Engineering Packaging.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 73 p.
  • 总页数 73
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;包装工程;无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:42:46

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