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Electromagnetic modeling of multi-dimensional scale problems: Nanoscale solar materials, RF electronics, wearable antennas.

机译:多维尺度问题的电磁建模:纳米尺度的太阳能材料,RF电子设备,可穿戴天线。

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摘要

The use of full wave electromagnetic modeling and simulation tools allows for accurate performance predictions of unique RF structures that exhibit multi-dimensional scales. Full wave simulation tools need to cover the broad range of frequency including RF and terahertz bands that is focused as RF technology is developed. In this dissertation, three structures with multi-dimensional scales and different operating frequency ranges are modeled and simulated.;The first structure involves nanostructured solar cells. The silicon solar cell design is interesting research to cover terahertz frequency range in terms of the economic and environmental aspects. Two unique solar cell surfaces, nanowire and branched nanowire are modeled and simulated. The surface of nanowire is modeled with two full wave simulators and the results are well-matched to the reference results. This dissertation compares and contrasts the simulators and their suitability for extensive simulation studies. Nanostructured Si cells have large and small dimensional scales and the material characteristics of Si change rapidly over the solar spectrum.;The second structure is a reconfigurable four element antenna array antenna operating at 60 GHz for wireless communications between computing cores in high performance computing systems. The array is reconfigurable, provides improved transmission gain between cores, and can be used to create a more failure resilient computing system. The on-chip antenna array involves modeling the design of a specially designed ground plane that acts as an artificial magnetic conductor. The work involves modeling antennas in a complex computing environment.;The third structure is a unique collar integrated zig-zag antenna that operates at 154.5 MHz for use as a ground link in a GPS based location system for wildlife tracking. In this problem, an intricate antenna is modeled in the proximity of an animal. Besides placing a low frequency antenna in a constricted area (the collar), the antenna performance near the large animal body must also be considered.;Each of these applications requires special modeling details to take into account the various dimensional scales of the structures and interaction with complex media. An analysis of the challenges and limits of each specific problem will be presented.
机译:全波电磁建模和仿真工具的使用可以对展现多维尺度的独特RF结构进行准确的性能预测。全波仿真工具需要涵盖广泛的频率范围,包括RF和太赫兹频段,这是随着RF技术的发展而集中的。本文对三种具有多维尺度和不同工作频率范围的结构进行了建模和仿真。硅太阳能电池设计在经济和环境方面涵盖太赫兹频率范围是一项有趣的研究。对两个独特的太阳能电池表面,纳米线和支化纳米线进行了建模和仿真。用两个全波模拟器对纳米线的表面进行建模,结果与参考结果完全匹配。本文比较并对比了仿真器及其在广泛仿真研究中的适用性。纳米结构的硅电池尺寸大小各异,并且硅的材料特性会在太阳光谱范围内快速变化。该阵列是可重新配置的,可提高内核之间的传输增益,并可用于创建更具故障恢复能力的计算系统。片上天线阵列涉及对特殊设计的接地平面的设计进行建模,该接地平面充当人造磁导体。这项工作涉及在复杂的计算环境中对天线建模。第三个结构是独特的项圈集成之字形天线,其工作频率为154.5 MHz,用作基于GPS的定位系统中的地面链接,以进行野生动植物追踪。在这个问题中,在动物附近模拟了复杂的天线。除了在狭窄区域(衣领)放置低频天线外,还必须考虑靠近大型动物身体的天线性能。这些应用中的每一种都需要特殊的建模细节,以考虑结构的各种尺寸比例和相互作用与复杂的媒体。将对每个特定问题的挑战和局限性进行分析。

著录项

  • 作者

    Yoo, Sungjong.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Electromagnetics.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 150 p.
  • 总页数 150
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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