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Modeling pulse propagation in loss compensated materials that exhibit the negative refractive index property.

机译:在具有负折射率特性的损耗补偿材料中模拟脉冲传播。

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摘要

Rapid development in nanofabrication has led to the design of new materials with very unusual properties. The exhibition of negative and zero indices of refraction are among the most striking properties of these materials, which have become the focus of intensive research worldwide. The potential for applications that is possible due to the new light manipulation capabilities of these materials has been the driving force behind this research. Most of the research in this field has primarily been experimental while the theoretical studies have mainly been limited to computer modeling, which in itself is a challenging problem. This research requires considerable computational resources and the development of new computer algorithms.;The origin of the unusual properties in these materials comes from the combination of dielectric host materials with metallic nanosructures. These materials are often referred to as nanocomposite metamaterials. The plasmonic resonance in properly engineered metallic nanostructures gives rise to the resonant interaction of the incident electromagnetic field with metamaterials in such a way as to stimulate a magnetic permeability and an electric permittivity with negative real parts. The resonant nature of this phenomenon leads to considerable losses in metamaterials, which has made the study of loss compensation one of the key subjects in this field.;The two techniques of loss compensation in metamaterials are considered in this dissertation. One of these techniques consists of doping the host material with active atoms. In the second technique, loss compensation is achieved by embedding these active atomic inclusions directly into the nanostructures. This dissertation presents the derivation of the systems of governing equations and studies the coherent pulse amplification for both cases.
机译:纳米制造的飞速发展导致了具有非同寻常性能的新材料的设计。负折射率和零折射率的展示是这些材料最引人注目的特性,这些特性已成为全世界深入研究的重点。由于这些材料具有新的光处理能力,其潜在的应用潜力一直是这项研究的推动力。该领域的大多数研究主要是实验性的,而理论研究则主要限于计算机建模,这本身就是一个具有挑战性的问题。这项研究需要大量的计算资源和新的计算机算法的开发。这些材料中异常特性的起源是电介质主体材料与金属纳米结构的结合。这些材料通常被称为纳米复合超材料。经过适当工程设计的金属纳米结构中的等离子共振会引起入射电磁场与超材料的共振相互作用,从而以负实部刺激磁导率和介电常数。这种现象的共振性质导致超材料的相当大的损耗,这使得损耗补偿的研究成为该领域的关键课题之一。本论文考虑了超材料的两种损耗补偿技术。这些技术之一是用活性原子掺杂主体材料。在第二种技术中,通过将这些活性原子夹杂物直接嵌入纳米结构中来实现损耗补偿。本文提出了控制方程组的推导,并研究了两种情况下的相干脉冲放大。

著录项

  • 作者

    Kennedy, Bridget Rose.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Mathematics.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:54

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