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Ridge aperture optical antennas.

机译:脊孔光天线。

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摘要

Due to diffraction light cannot be focused to a spot smaller than about half its wavelength in the far-field using conventional optics. This poses an obstacle for several practical engineering problems, notably nanolithography. Confining light with an aperture is a straightforward way to generate a sub diffraction-limited spot. Understanding the physics of the apertures provides insight into the design and modeling. This work is based on resonant ridge apertures, particularly bowtie apertures. This geometry provides high transmission while maintaining very good light confinement.;The motivation for this work is direct-write nanolithography, although the tools presented have widespread applications. To this end we study nanoscale apertures, identify their transmission characteristics including resonances, and provide the insight necessary for their design. Nanoscale apertures can be used to define patterns by moving them relative to a photoresist. We describe the work leading to a system capable of writing multiple lines in parallel. The quality of the patterns is highly dependent of their fabrication. In this work we use Focused Ion Beam (FIB) milling, the limitations of which are discussed. Understanding and optimizing this procedure is important for successfully fabricating the apertures as well as modeling their performance.;Based on the study of the bowtie aperture we show how to enhance its transmission by adding a grating structure to the mask. This is demonstrated experimentally. We also show how a resonant aperture can couple to waveguides which may have photonic applications. We also investigate what happens when the apertures are placed in an array, demonstrating that the transmission can exceed the light incident on the open area by a factor of four in the infrared. This has frequency selective surface applications as well as potential as a sensor. We also show how the aperture array can be designed to trap light in a weakly absorbing layer. Finally we design a bowtie aperture array to enhance the efficiency of thin film silicon solar cells up to 39%.
机译:由于衍射,使用常规光学器件无法将光聚焦到远场中小于其波长一半左右的光点。这为一些实际的工程问题(尤其是纳米光刻)带来了障碍。用孔径限制光是生成次衍射限制光斑的直接方法。了解光圈的物理特性可以深入了解设计和建模。这项工作基于共振脊孔,特别是领结孔。这种几何形状提供了高透射率,同时又保持了很好的光限制。;尽管提供的工具具有广泛的应用,但这项工作的动机是直接写入纳米光刻。为此,我们研究了纳米级孔,确定了它们的传输特性(包括共振),并提供了设计所需的见识。可以通过相对于光刻胶移动纳米级孔来定义图案。我们描述了导致系统能够并行编写多行的工作。图案的质量高度依赖于其制造。在这项工作中,我们使用聚焦离子束(FIB)铣削,并讨论了其局限性。理解和优化此过程对于成功制作孔径以及对其性能进行建模非常重要。;基于对蝴蝶结孔径的研究,我们展示了如何通过向掩模添加光栅结构来增强其透射率。实验证明了这一点。我们还展示了谐振孔径如何耦合到可能具有光子应用的波导。我们还研究了将孔排列成阵列时会发生什么情况,这表明透射率可以比入射到开放区域的光在红外光中的入射光超出四分之一。这具有频率选择性表面应用以及传感器的潜力。我们还展示了如何设计光圈阵列以将光捕获在弱吸收层中。最后,我们设计了一个领结孔阵列,以将薄膜硅太阳能电池的效率提高多达39%。

著录项

  • 作者

    Kinzel, Edward C.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Mechanical.;Physics Optics.;Physics Electricity and Magnetism.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 216 p.
  • 总页数 216
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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