首页> 外文学位 >Modeling and simulation of photonic crystal fibers and distributed feedback photonic crystal fiber lasers.
【24h】

Modeling and simulation of photonic crystal fibers and distributed feedback photonic crystal fiber lasers.

机译:光子晶体光纤和分布式反馈光子晶体光纤激光器的建模和仿真。

获取原文
获取原文并翻译 | 示例

摘要

A photonic crystal fiber (PCF) is comprised of a solid or air core surrounded by periodically arranged air holes running along the length of the fiber, which guides light in a fundamentally new way compared to conventional optical fibers, affecting almost all areas of optics and photonics. To analyze the dispersion and loss properties of PCFs, a two-dimensional (2D) finite-difference frequency-domain (FDFD) method combined with the technique of perfectly matched layer (PML) is developed. The propagation constant and loss can be obtained with accuracies in the orders of ∼10-6 and ∼10 -3, respectively.; The Bragg fiber is a kind of PCF with alternate layers surrounding a solid or air core. To improve the performance of the above algorithm, a 1D FDFD method in the cylindrical coordinates is proposed to fully utilize the rotational symmetry property of the Bragg fiber. In addition to improving the accuracy, this method reduces the computation region from 2D to a straight line, significantly relieving the computation burden. A second method, called Galerkin method, is also developed under cylindrical coordinates. The mode fields are expanded using orthogonal Laguerre-Gauss functions; and the method is accurate and stable. However, it cannot do the loss analysis.; For photonic-band-gap-guiding PCFs, the properties of the confined modes are closely related to the band structures of the cladding photonic crystals. Therefore, a third FDFD method using periodic boundaries is developed in a generalized coordinate system. Various lattice geometries are analyzed in the same manner, and the results are comparable to those obtained by the plane wave expansion method which is commonly used in the literature.; Finally, a theoretical model for analyzing distributed feedback (DFB) PCF lasers has been presented. Two structures are investigated: PCFs with triangular lattice (TPCF) and PCFs made of capillary tube (CPCF). The modeling and simulation of erbium-doped and erbium/ytterbium (Er/Yb) co-doped DFB lasers are aimed at finding suitable PCF geometry to achieve low threshold and high output power. Various steps involved in this model are: (1) the properties of PCFs are analyzed by the FDFD method; (2) the Bragg grating is investigated by coupled mode theory; (3) the coupled wave equations are solved by transfer matrix method; and (4) Er atom is modeled as a three-level medium while energy transfer between Yb and Er atoms is considered for Er/Yb co-doped fiber.; It is found that a CPCF laser with a smaller mode area is useful for lower-threshold applications and both of CPCF and TPCF lasers with larger mode areas are suitable for high-power operation. (Abstract shortened by UMI.)
机译:光子晶体光纤(PCF)由实心或空芯组成,并由沿光纤长度方向周期性排列的气孔包围,与传统光纤相比,光导晶体以一种全新的方式引导光,几乎影响了光学和光学领域。光子学。为了分析PCF的色散和损耗特性,开发了一种二维(2D)有限差分频域(FDFD)方法和完美匹配层(PML)技术。可以分别以〜10-6和〜10 -3的量级获得传播常数和损耗。布拉格纤维是一种PCF,其具有围绕实心或空芯的交替层。为了提高上述算法的性能,提出了一种在圆柱坐标系下的一维FDFD方法,以充分利用布拉格光纤的旋转对称特性。除了提高精度外,该方法还将计算范围从2D减小到直线,从而大大减轻了计算负担。在圆柱坐标下也开发了第二种方法,称为Galerkin方法。模式字段使用正交Laguerre-Gauss函数扩展;该方法准确,稳定。但是,它无法进行损失分析。对于光子带隙导引的PCF,限制模式的性质与包层光子晶体的能带结构密切相关。因此,在广义坐标系中开发了使用周期性边界的第三FDFD方法。以相同的方式分析各种晶格几何形状,其结果与文献中常用的通过平面波扩展方法获得的结果可比。最后,提出了一种用于分析分布式反馈(DFB)PCF激光器的理论模型。研究了两种结构:具有三角形晶格的PCF(TPCF)和由毛细管制成的PCF(CPCF)。掺and和掺//((Er / Yb)共掺DFB激光器的建模和仿真旨在寻找合适的PCF几何形状,以实现低阈值和高输出功率。该模型涉及的各个步骤为:(1)通过FDFD方法分析PCF的特性; (2)采用耦合模理论研究布拉格光栅。 (3)用传递矩阵法求解耦合波动方程; (4)将Er原子建模为三能级介质,同时考虑到Er / Yb共掺杂光纤在Yb和Er原子之间的能量转移。已经发现,模式面积较小的CPCF激光器可用于较低阈值的应用,而模式面积较大的CPCF和TPCF激光器均适用于高功率操作。 (摘要由UMI缩短。)

著录项

  • 作者

    Wu, Feng.;

  • 作者单位

    Old Dominion University.;

  • 授予单位 Old Dominion University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 90 p.
  • 总页数 90
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号