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Chalcogenide-glass Negative Curvature Fibers

机译:硫族化物玻璃负曲率纤维

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Hollow-core negative curvature fibers have drawn lots of attention due to their attractive properties, including a low transmission loss, a wide transmission bandwidth, low power ratio in the glass, and a simple structure. In this dissertation, we describe the history, guiding mechanism, advances, and future prospects for negative curvature fibers. We focus our studies on negative curvature fibers using chalcogenide glasses, which have low material loss in the mid-infrared region. Optical fibers used for lasers in mid-infrared region have important applications for chemical sensing, environmental monitoring, homeland security, and medical diagnostics.;We study one-dimensional slab waveguides, two-dimensional annular core fibers, and negative curvature tube-lattice fibers to illustrate the inhibited coupling guiding mechanism. Antiresonance in the glass at the core boundary and a wavenumber mismatch between the core and cladding modes inhibit coupling between the modes and have led to remarkably low loss in negative curvature fibers.;We show computational studies to design negative curvature fibers that improve the performance of the hollow core fibers. First, we compare loss in silica and chalcogenide negative curvature fibers and consider both simple and nested geometries as the transmission wavelength varies. At wavelengths shorter than 4.5 microm, silica negative curvature fibers have a loss that is around or below 10--1 dB/m and are preferable to chalcogenide fibers. At wavelengths longer than 4.5 microm, it is preferable to use As2 S3 chalcogenide or As2Se3 chalcogenide negative curvature fibers since their loss is one or more orders of magnitude lower than the loss of silica negative curvature fibers. Second, we find the impact of cladding tubes in chalcogenide negative curvature fibers. The leakage loss is decreased by a factor of 19 and the operating bandwidth is almost doubled when the optimal gap between cladding tubes is used in negative curvature fibers with 6 tubes. The optimal gap in a fiber with 6 cladding tubes is 3 times as large as the optimal gap in fibers with 8 or 10 cladding tubes. A larger gap is needed in a fiber with 6 cladding tubes to remove the weak coupling between the central core mode and the tube modes. Third, we study conditions for suppression of higher-order core modes in chalcogenide negative curvature fibers with an air core. An avoided crossing between the higher-order core modes and the fundamental modes in the tubes surrounding the core can be used to resonantly couple these modes, so that the higher-order core modes become lossy. Fourth, we study bend loss in chalcogenide negative curvature fibers with different polarizations, different tube wall thicknesses, and different bend directions relative to the mode polarization. The coupling between the core mode and tube modes induces bend loss peaks in the two non-degenerate modes at the same bend radius. There is as much as a factor of 28 difference between the losses of the two polarization modes. Last, we propose a polarization-filtering and polarization-maintaining negative curvature fiber in which two nested resonant tubes are added to a standard negative curvature fiber with one ring of tubes. The coupling between the glass modes in the nested resonant tubes and the fundamental core modes is used to increase the birefringence and differential loss for the fundamental core modes in the two polarizations.;At the end, we discuss the future prospects for negative curvature fibers and give a summary.
机译:中空负曲率纤维由于具有吸引人的特性而备受关注,这些特性包括低的传输损耗,宽的传输带宽,低的玻璃功率比以及简单的结构。本文介绍了负曲率纤维的历史,形成机理,发展前景和发展前景。我们将研究重点放在使用硫族化物玻璃的负曲率纤维上,该纤维在中红外区的材料损耗低。用于中红外区域的激光器的光纤在化学传感,环境监测,国土安全和医学诊断中具有重要的应用。;我们研究了一维平板状波导,二维环形芯光纤和负曲率管格光纤说明受抑制的耦合引导机制。玻璃在芯边界处的反共振以及芯模和包层模之间的波数失配抑制了模之间的耦合,并导致负曲率光纤的损耗显着降低。我们展示了计算研究来设计负曲率光纤,以改善光纤的性能。中空纤维。首先,我们比较二氧化硅和硫族化物负曲率纤维的损耗,并考虑随传输波长变化的简单几何形状和嵌套几何形状。在小于4.5微米的波长处,二氧化硅负曲率纤维的损耗约为10--1 dB / m或低于10--1 dB / m,比硫族化物纤维更好。在大于4.5微米的波长处,优选使用As 2 S 3硫属化物或As 2 Se 3硫属化物负曲率纤维,因为它们的损失比二氧化硅负曲率纤维的损失低一个或多个数量级。其次,我们发现包层管对硫族化物负曲率光纤的影响。当在具有6个管的负曲率光纤中使用包层管之间的最佳间隙时,泄漏损耗减少了19倍,并且工作带宽几乎增加了一倍。具有6个包层管的光纤的最佳间隙是具有8个或10个包层管的光纤的最佳间隙的3倍。在具有6个包层管的光纤中,需要有一个较大的间隙,以消除中心纤芯模和管模之间的弱耦合。第三,我们研究了抑制具有空芯的硫族化物负曲率光纤中高阶芯模的条件。避免使用高阶磁芯模和围绕磁芯的管中的基本模之间的交叉来共振耦合这些模,从而使高阶磁芯模变得有损耗。第四,我们研究了相对于模态偏振具有不同偏振,不同管壁厚度和不同弯曲方向的硫族化物负曲率光纤的弯曲损耗。核心模和管模之间的耦合会在相同弯曲半径的两个非简并模中引起弯曲损耗峰。两种偏振模的损耗之间相差多达28倍。最后,我们提出了一种偏振滤波和保持偏振的负曲率光纤,其中将两个嵌套的谐振管添加到带有一个环管的标准负曲率光纤中。嵌套谐振管中的玻璃模与基本纤芯模之间的耦合被用于增加两种偏振中基本纤芯模的双折射和微分损耗。最后,我们讨论了负曲率光纤和光纤的未来前景。总结一下。

著录项

  • 作者

    Wei, Chengli.;

  • 作者单位

    Baylor University.;

  • 授予单位 Baylor University.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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