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A polarization isolation method for measurement of fluorescence assays in a microfluidic system using organic electronics for application to point-of-care diagnostics.

机译:一种极化隔离方法,用于在微流体系统中使用有机电子设备测量荧光检测,用于现场诊断。

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摘要

This dissertation demonstrates a cheap, disposable, integrated on-chip fluorescence detector with limit of detection (LOD) of 1 nanomoles(nM) of a fluorescence dye which is 1000 times less than that reported in current literature. The on-chip fluorescence detector has been fabricated from scratch using novel organic electronic devices with a potential to go down to picomolar detection limits when properly optimized. A high-sensitivity MEMS based on-chip fluorescence detection system consisting of a light source, sample chamber, detector and couple of polarizers was integrated into a set of 3"x1" glass slides. A green organic light-emitting diode (OLED) has been used as the excitation source and organic photodiode (OPD) has been used as the fluorescence detector. A novel integrated cross-polarization scheme was used to filter out excitation light from the fluorescent dye emission spectrum. Two commonly used dyes in biotechnology applications, Rhodamine 6G and Fluorescein have been detected down to ten's of nanomoles which is several orders of magnitude improvement in detection limits over existing literature using OPD. A theoretical model has been developed to study fluorescence signal variation with dye concentration for this particular system. A theoretical curve fitting has been performed based on the model. The theoretical fit matches closely with experimental data. The parameters for an optimized system for the theoretical lowest limit of detection (LOD) of the dyes have been tabulated. The minimum achievable LOD with optimized parameters is potentially as low as 10 picomoles(pM) which is 106 lower than the micromolar detection regime found in current literature for on-chip detection devices using organic photodiodes. A portable picomolar on-chip detection system can have wide applications in detection of pathogens for point-of-care diagnostics systems and also in water purification plants.
机译:本文证明了一种便宜的,一次性的,集成的片上荧光检测器,其检测限(LOD)为1纳摩尔(nM)的荧光染料,比当前文献报道的检测限低1000倍。片上荧光检测器是使用新颖的有机电子设备从头开始制造的,经过适当优化,其潜力可能降至皮摩尔检测极限。基于高灵敏度MEMS的芯片上荧光检测系统,该系统由光源,样品室,检测器和成对的偏振器组成,已集成到一组3“ x1”载玻片中。绿色有机发光二极管(OLED)已用作激发源,有机光电二极管(OPD)已用作荧光检测器。一种新颖的集成交叉偏振方案被用来滤除荧光染料发射光谱中的激发光。在生物技术应用中,两种最常用的染料罗丹明6G和荧光素已被检测到低至10纳摩尔,与使用OPD的现有文献相比,检测极限提高了几个数量级。已经开发出理论模型来研究该特定系统的荧光信号随染料浓度的变化。已基于该模型进行了理论曲线拟合。理论拟合与实验数据紧密匹配。已将用于染料理论最低检测限(LOD)的优化系统的参数制成表格。具有优化参数的最小可实现LOD可能低至10皮摩尔(pM),这比当前文献中针对使用有机光电二极管的芯片检测设备中发现的微摩尔检测机制低106皮摩尔。便携式皮摩尔芯片上检测系统可广泛应用于现场诊断系统的病原体检测以及净水厂。

著录项

  • 作者

    Banerjee, Ansuman.;

  • 作者单位

    University of Cincinnati.;

  • 授予单位 University of Cincinnati.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 177 p.
  • 总页数 177
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:39:02

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