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Waveguide Sensor Platforms: A) Development of the Electroactive Fiber-Optic Chip and B) Attenuated Total Reflectance Spectroscopy of New Molecular Materials

机译:波导传感器平台:A)电活性光纤芯片的开发和B)新分子材料的衰减全反射光谱

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摘要

The work embodied in this dissertation is specifically focused on the evanescent interaction of light with thin-films which has lead to two related instrument based projects: i) the Electroactive Fiber-Optic Chip (EA-FOC) and ii) Attenuated Total Reflectance (ATR) spectroscopy of novel materials. The EA-FOC combines the sensitivity of an electroactive total internal reflection element (20 to 50 times more sensitive than a transmission experiment) with the ease of use of fiber-optic based CCD spectrometers. A side-polished optical fiber, in a V-groove glass mount, forms the planar platform, which allows access to the evanescent field escaping from the fiber core. The exposed evanescent field, which was used to probe molecules or molecular assemblies supported by the platform, has an interaction area ca. 0.05 cm squared. Thin-film and bulk absorbing samples, and waveguide modeling calculations were initially used to evaluate the sensitivity of the FOC platform, which was found to be analogous to ATR instrumentation. The wavelength range of the FOC platform was increased to include the near-UV and applied to monitor adsorption of a protein film. Fluorescence applications of the FOC were demonstrated using a fluorescence bioassay and a drop cast nanoparticle film. Finally, a transparent conducting oxide film, ITO, was added to the surface of the platform to complete the EA-FOC for spectroelectrochemical applications. A methylene blue redox couple and an electrodeposited ultra-thin PEDOT film were used to probe the capabilities of the EA-FOC. The EA-FOC was shown to be a multifunctional platform for advanced sensor technologies requiring absorbance, fluorescence, and electrochemical detection or a combination thereof.ATR spectroscopy of novel materials included the evaluation of two architectures: i) a pH sensitive polyelectrolyte film and ii) surface capture of a nanoparticle film. Absorbance spectra of a polyaniline/polyacetic acid self-assembled bilayer were evaluated with respect to pH and potential using ATR spectroscopy; the ultimate application of the polymer signal transduction layer was to monitor proton transport across a lipid-bilayer. Additionally, ATR spectroscopy was used to monitor adsorption of pyridine capped nanoparticles on a silyl-propyl-thiol modified surface.
机译:本论文的工作重点是光与薄膜的消逝相互作用,这导致了两个相关的基于仪器的项目:i)电活性光纤芯片(EA-FOC)和ii)衰减全反射率(ATR) )新型材料的光谱学。 EA-FOC将电活性全内反射元件的灵敏度(比透射实验高20至50倍)与基于光纤的CCD光谱仪的易用性相结合。 V形槽玻璃底座中的侧面抛光光纤形成了平面平台,该平台允许进入从光纤纤芯逸出的渐逝场。用于探测平台支撑的分子或分子组件的外露瞬逝场的相互作用区域约为ca。 0.05平方厘米。最初使用薄膜和大量吸收样品以及波导模型计算来评估FOC平台的灵敏度,发现该平台类似于ATR仪器。 FOC平台的波长范围增加到包括近紫外光,并用于监视蛋白质膜的吸附。使用荧光生物测定法和滴铸纳米颗粒薄膜证明了FOC的荧光应用。最后,将透明导电氧化物膜ITO添加到平台的表面,以完成用于光谱电化学应用的EA-FOC。亚甲蓝氧化还原对和电沉积的超薄PEDOT膜用于探测EA-FOC的功能。 EA-FOC被证明是需要吸收,荧光和电化学检测或其组合的先进传感器技术的多功能平台。新型材料的ATR光谱学包括两种体系结构的评估:i)pH敏感的聚电解质膜和ii)纳米颗粒膜的表面捕获。使用ATR光谱法评估了聚苯胺/聚乙酸自组装双层的吸收光谱的pH和电势。聚合物信号转导层的最终应用是监测质子跨脂质双层的传输。另外,使用ATR光谱法监测吡啶封端的纳米颗粒在甲硅烷基-丙基-硫醇修饰的表面上的吸附。

著录项

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    Beam Brooke Michelle;

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  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 en
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