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Multifunctional organic-inorganic hybrid nanophotonic devices.

机译:多功能有机-无机混合纳米光子器件。

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摘要

The emergence of optical applications, such as lasers, fiber optics, and semiconductor based sources and detectors, has created a drive for smaller and more specialized devices. Nanophotonics is an emerging field of study that encompasses the disciplines of physics, engineering, chemistry, biology, applied sciences and biomedical technology. In particular, nanophotonics explores optical processes on a nanoscale.;This dissertation presents nanophotonic applications that incorporate various forms of the organic polymer N-isopropylacrylamide (NIPA) with inorganic semiconductors. This includes the material characterization of NIPA, with such techniques as ellipsometry and dynamic light scattering. Two devices were constructed incorporating the NIPA hydrogel with semiconductors.;The first device comprises a PNIPAM---CdTe hybrid material. The PNIPAM is a means for the control of distances between CdTe quantum dots encapsulated within the hydrogel. Controlling the distance between the quantum dots allows for the control of resonant energy transfer between neighboring quantum dots. Whereby, providing a means for controlling the temperature dependent red-shifts in photoluminescent peaks and FWHM. Further, enhancement of photoluminescent due to increased scattering in the medium is shown as a function of temperature.;The second device incorporates NIPA into a 2D photonic crystal patterned on GaAs. The refractive index change of the NIPA hydrogel as it undergoes its phase change creates a controllable mechanism for adjusting the transmittance of light frequencies through a linear defect in a photonic crystal. The NIPA infiltrated photonic crystal shows greater shifts in the bandwidth per °C than any liquid crystal methods.;This dissertation demonstrates the versatile uses of hydrogel, as a means of control in nanophotonic devices, and will likely to lead to development of other hybrid applications. The development of smaller light based applications will facilitate the need to augment the devices with control mechanism and will play an increasing important role in the future.
机译:诸如激光,光纤,以及基于半导体的源和探测器之类的光学应用的出现,为更小,更专业的设备提供了驱动力。纳米光子学是一个新兴的研究领域,涵盖物理,工程,化学,生物学,应用科学和生物医学技术等学科。尤其是,纳米光子学研究了纳米尺度的光学过程。本论文提出了将各种形式的有机聚合物N-异丙基丙烯酰胺(NIPA)与无机半导体结合在一起的纳米光子应用。这包括使用椭圆偏振法和动态光散射等技术对NIPA进行材料表征。构造了两个将NIPA水凝胶与半导体结合在一起的器件;第一个器件包含PNIPAM --- CdTe杂化材料。 PNIPAM是控制封装在水凝胶中的CdTe量子点之间距离的手段。控制量子点之间的距离允许控制相邻量子点之间的共振能量转移。从而,提供一种用于控制光致发光峰和FWHM中与温度有关的红移的装置。此外,由于在介质中散射的增加而导致的光致发光的增强显示为温度的函数。第二个设备将NIPA结合到在GaAs上构图的2D光子晶体中。 NIPA水凝胶在经历其相变时的折射率变化产生了一种可控制的机制,用于调节通过光子晶体中线性缺陷的光频率的透射率。与任何液晶方法相比,NIPA渗透的光子晶体在每°C的带宽上显示出更大的位移。;本论文证明了水凝胶作为纳米光子器件中的一种控制手段的广泛用途,并可能导致其他混合应用的发展。较小的基于光的应用程序的开发将促进对具有控制机制的设备的需求,并且在未来将扮演越来越重要的角色。

著录项

  • 作者

    Garner, Brett William.;

  • 作者单位

    University of North Texas.;

  • 授予单位 University of North Texas.;
  • 学科 Physics Condensed Matter.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 247 p.
  • 总页数 247
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

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