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Electromagnetic wave propagation in two-dimensional photonic crystals.

机译:电磁波在二维光子晶体中的传播。

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摘要

In this dissertation, we have undertaken the challenge to understand the unusual propagation properties of the photonic crystal (PC)—a medium with periodically modulated dielectric function. PCs have frequency regions were propagation is prohibited (gaps) and regions where propagation is allowed (bands). We first study a two-dimensional (2D) photonic crystal system in the gap region. A line defect introduces allowed states in an otherwise prohibited frequency spectrum. The dependence of the defect resonance state on the system's parameters, such as the lateral width of the structure and the profile of the source, is investigated in detail. Subsequently, we examine the band properties of periodic 2D PCs, and study their unusual refractive behavior. In some cases, of anomalous refraction in PCs, the beam refracts on the “wrong” side of the surface normal, a phenomenon known as negative refraction. This phenomenon occurs in materials with the wave vector, the electric field, and the magnetic field forming a left-handed set of vectors—called left-handed materials (LHM) or negative index materials (NIM). We examine carefully the conditions to obtain left-handed behavior in PCs. We find with a wedge type simulation experiment, that in the PC system negative refraction is neither a prerequisite nor guarantees left-handed behavior. We identify a frequency region where the PC shows left-handed behavior and acts in some respects like a homogeneous medium with a negative refractive index. Using this realistic PC system we show how negative refraction occurs. Our findings indicate that the formation of the negatively refracted beam is not instantaneous and involves a transient time. This way, we address previous controversial issues about negative refraction concerning causality and the speed of light limit. Lastly, we systematically study anomalous refractive phenomena in PCs. We classify these different effects according to their Bragg order and type of propagation (left-handed or not). Moreover, we discuss the validity of our findings in the low index modulation PCs.
机译:在本文中,我们面临着挑战,以了解光子晶体(PC)的异常传播特性-一种具有周期性调制介电功能的介质。 PC具有禁止传播的频率区域(间隙)和允许传播的区域(频带)。我们首先研究间隙区域中的二维(2D)光子晶体系统。线路缺陷会在其他禁止的频谱中引入允许的状态。详细研究了缺陷共振状态对系统参数的依赖性,例如结构的横向宽度和源的轮廓。随后,我们检查了周期性2D PC的波段特性,并研究了其异常的折射行为。在某些情况下,由于PC的折射异常,光束会在表面法线的“错误”侧折射,这种现象称为负折射。这种现象发生在具有波矢量,电场和磁场的材料中,这些材料形成左手矢量集,称为左手材料(LHM)或负折射率材料(NIM)。我们仔细检查了获得PC惯用左手行为的条件。我们通过楔形模拟实验发现,在PC系统中,负折射既不是前提条件,也不是保证左撇子行为的保证。我们确定一个频率区域,其中PC显示左手行为,并在某些方面像具有负折射率的均匀介质一样起作用。使用这个现实的PC系统,我们演示了负折射如何发生。我们的发现表明负折射光束的形成不是瞬时的,而是一个瞬态时间。这样,我们解决了以前有关因果关系和光速限制的负折射问题。最后,我们系统地研究了PC中的异常屈光现象。我们根据它们的布拉格顺序和传播类型(是否用左手)将这些不同的效果分类。此外,我们讨论了我们的发现在低折射率调制PC中的有效性。

著录项

  • 作者

    Foteinopoulou, Stavroula.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Physics Condensed Matter.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 179 p.
  • 总页数 179
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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