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Optical properties of novel structures of colloidal crystals.

机译:胶体晶体新颖结构的光学性质。

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摘要

Photonic crystals are materials having a periodicity in their refractive index. This results in the inhibition of select frequencies of light from propagating within the crystal causing the formation of a gap in the photonic band structure. Analogous to semiconductors, the presence of a photonic band gap makes these materials tremendously promising for a new revolution in the technology industry. Their periodic nature make them ideal for two-dimensional lithographic fabrication. However self assembly methods with colloids offer the most promising route to fabricating three-dimensional structures, so as to affect the confinement of light in all directions. The work presented in this thesis strives to advance the understanding of colloidal crystals to ultimately facilitate the construction of real, working, commercial devices. We probe the optical properties of such colloidal crystals and describe techniques to engineer them into novel structures, such as crystals of hollow spherical shells, to enhance the performance of the photonic band gap. We examine novel architectures like colloidal photonic superlattices to generate propagation modes within the band gap and show that such structures can be fabricated to have uses as filters and optical resonators. We investigate incorporating colloidal crystal structures into organic light-emitting devices to improve device performance by spatially modifying the light output. Finally, as it is critical to fabricate high quality devices approaching the accuracy obtained by lithography, we conduct a systematic and quantitative study of the nature of defects in these colloidal crystals and correlate structural defects during fabrication to altered optical properties.
机译:光子晶体是折射率具有周期性的材料。这导致光的选择频率的抑制在晶体内传播,从而导致在光子能带结构中形成间隙。与半导体类似,光子带隙的存在使这些材料对于技术行业的新革命具有巨大的希望。它们的周期性使它们成为二维光刻制造的理想选择。然而,使用胶体的自组装方法为制造三维结构提供了最有希望的途径,从而影响了所有方向的光限制。本文提出的工作旨在增进对胶体晶体的理解,以最终促进实际,实用的商业设备的构建。我们探讨了这种胶体晶体的光学性质,并描述了将其工程化为新颖结构(例如空心球形壳的晶体)以增强光子带隙性能的技术。我们研究了像胶体光子超晶格这样的新颖体系结构,以在带隙内生成传播模式,并表明可以制造此类结构以用作滤波器和光谐振器。我们研究了将胶体晶体结构并入有机发光器件中,以通过在空间上修改光输出来提高器件性能。最后,由于制造接近光刻技术所能达到的精度的高质量器件至关重要,因此,我们对这些胶体晶体中的缺陷性质进行了系统且定量的研究,并将制造过程中的结构缺陷与改变的光学特性相关联。

著录项

  • 作者

    Rengarajan, Rajesh.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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