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Transfer-printed photonic crystal nanomembrane Fano resonance filters and modulators.

机译:转移印刷的光子晶体纳米膜Fano共振滤波器和调制器。

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摘要

This dissertation presents the research work on photonic crystal nanomembrane Fano resonance devices based on transfer printing techniques. Ultra-compact high quality (Q) factor optical filters have been design, fabricated, and characterized based on single-layer and coupled double-layer photonic crystal slabs (PCS). Optical filters have also been designed and investigated for potentially high speed spatial lighting modulations. Fano resonance membrane reflectors with operation wavelength bands cover from near-infrared to mid and far-infrared have also been fabricated based on both reaction ion-etching and magnetic field guided metal-assisted chemical etching processes.;Based on crystalline semiconductor nanomembrane transfer printing technique, we designed and experimentally demonstrated coupled double-layer PCS high-Q filters with or without lattice displacement. A Q factor of 10,000 was obtained experimentally from coupled double-layer PCS filters without lattice offset. On the other hand, a Q factor of 80,000 was obtained experimentally from a coupled double-layer PCS filters with lattice displacement. Simulated optical Q factors in these double-layer PCS Fano filters can approach 220,000,000 or higher, with optimized designs in lattice displacement and in buffer layer selection. These high Q modes arise from coupled bright or dark resonance modes in these coupled double-layer PCS cavities. Note that when one assume no material absorption, these coupled PCSs resonator structures can offer an opportunity for infinite Q-factor with optimized design and buffer layer thickness selection.;For a single-layer Si-PCS based filter design, we have experimentally obtained Q factor of 1,700 with 23dB extinction ratio (ER). A unique single-layer PCS Fano resonance modulator was demonstrated by transfer-printing photonic-crystal nanomembrane on glass. Base on the ultra high-Q resonance we have recently achieved in the bi-layers PCSs structure, we also proposed and designed an ultra-compact double-layer photonic-crystal Fano resonance modulator.
机译:本文介绍了基于转移印刷技术的光子晶体纳米膜Fano共振装置的研究工作。基于单层和耦合双层光子晶体平板(PCS),已经设计,制造和表征了超紧凑高质量(Q)因子光学滤波器。还已经设计和研究了滤光器以用于潜在的高速空间照明调制。基于反应离子刻蚀和磁场引导的金属辅助化学刻蚀工艺,还制备了工作波段覆盖从近红外到中红外的法诺共振膜反射器。基于晶体半导体纳米膜转移印刷技术,我们设计并通过实验证明了具有或不具有晶格位移的耦合双层PCS高Q滤波器。从耦合的双层PCS滤波器无晶格偏移的实验中获得了10,000的Q因子。另一方面,从具有晶格位移的耦合双层PCS滤波器实验获得了80,000的Q因子。这些双层PCS Fano滤波器中的模拟光学Q因子可以达到220,000,000或更高,并具有晶格位移和缓冲层选择方面的优化设计。这些高Q模式来自于这些耦合的双层PCS腔中耦合的亮或暗共振模式。请注意,当假设没有材料吸收时,这些耦合的PCS谐振器结构可以通过优化设计和缓冲层厚度选择为无限Q因子提供机会。对于基于单层Si-PCS的滤波器设计,我们已经通过实验获得了Q消声比(ER)为1,700时的系数为1,700。通过在玻璃上转移印刷光子晶体纳米膜,证明了独特的单层PCS Fano共振调制器。基于我们最近在双层PCSs结构中实现的超高Q共振,我们还提出并设计了一种超紧凑型双层光子晶体Fano共振调制器。

著录项

  • 作者

    Shuai, Yi-Chen.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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