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Luminescent sensor improvements: Materials to techniques.

机译:发光传感器的改进:技术的材料。

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摘要

Multiple approaches to improving luminescent sensor technology have been pursued. The first approach seeks novel sensor-polymer support systems to elucidate the significant, yet not fully characterized, role of polymer supports in sensor performance and to detect specific analytes including copper(II) ions and carbon dioxide. Both detection systems utilize luminescent ruthenium(II) complexes as the sensor molecule. The polymers used contain a hydrophobic binding region for the sensor molecule.; The first sensing model consisted of a sensor complex (Ru-cyclam = [Ru(Ph 2phen)2(4-cyclamCH2(4'-Me)bpy)]Cl 2 where Ph2phen = 4,7-diphenyl-1,10-phenanthroline, bpy = 2,2'-bipyridine, and cyclam = 1,4,8,11-tetraazacyclotetradecane), a quenching analyte (copper(II) ions), and a polymer support. The second sensing system was designed to measure carbon dioxide-induced pH changes. This model system consisted of a sensor complex ([Ru(Ph2phen)2(DEAM 2bpy)]2+ where DEAM2bpy = 4,4' -bis (diethylaminomethyl)-2,2' bipyridine), a phase transfer agent, and a polymer support.; To further the understanding of the gas diffusion measurements and interactions between sensor molecules and polymer supports, a computerized intensity-based diffusion coefficient instrument (CDI) was designed and constructed. Design considerations, a series of mathematical simulations, and experimental results for automated luminescence-based oxygen diffusion coefficient measurements are discussed.; Sensor technology can also be improved by modifying existing measurement methods. Gated phase-modulation (GPM) fluorometry was developed to measure lifetimes from relative long-lived samples without or with reduced errors from scattered light and short-lived fluorescences. The use of an offset time prior to gating the detector on mitigates errors from fluorescence bleed-through into the detection period or a slow excitation source turn off for relative long-lived samples. Theory and experimental results are presented.; An adaptation of GPM fluorimetry allows for self-referenced intensity measurements. A combination of theory and experimental results demonstrated the validity of GPM and its adaptation. As the concentration of the analyte changed, the corresponding sensor intensity changes can be quantified through several schemes including digitization of the signal and digital integration or AC methods. The adaptation requires the use of a reference emitter and an analyte-sensitive molecule with very different lifetimes. The fluctuations of the excitation source and any optical transmission changes are eliminated by ratioing the sensor emission to the reference emission.
机译:已寻求改善发光传感器技术的多种方法。第一种方法寻求新颖的传感器-聚合物载体系统,以阐明聚合物载体在传感器性能中的重要但尚未完全表征的作用,并检测包括铜(II)离子和二氧化碳在内的特定分析物。两种检测系统均使用发光钌(II)配合物作为传感器分子。所使用的聚合物包含用于传感器分子的疏水结合区。第一个传感模型由传感器复合物(Ru-cyclam = [Ru(Ph 2phen)2(4-cyclamCH2(4'-Me)bpy)] Cl 2组成,其中Ph2phen = 4,7-二苯基-1,10-菲咯啉,bpy = 2,2'-联吡啶和cyclam = 1,4,8,11-四氮杂环十四烷),淬灭分析物(铜(II)离子)和聚合物载体。第二个传感系统旨在测量二氧化碳引起的pH变化。该模型系统由传感器复合物([Ru(Ph2phen)2(DEAM 2bpy)] 2+其中DEAM2bpy = 4,4'-双(二乙氨基甲基)-2,2'联吡啶),相转移剂和聚合物组成支持。;为了进一步了解气体扩散测量以及传感器分子与聚合物载体之间的相互作用,设计并构建了基于计算机的基于强度的扩散系数仪器(CDI)。讨论了基于自动发光的氧扩散系数测量的设计注意事项,一系列数学模拟和实验结果。传感器技术也可以通过修改现有的测量方法来改进。门控相位调制(GPM)荧光测定法的发展是为了测量相对长寿命样品的寿命,而不会因散射光和短寿命荧光而产生或减少误差。在对检测器进行门控之前,使用偏移时间可以缓解荧光渗漏到检测期间或相对较长寿命的样品的缓慢激发源关闭带来的误差。给出了理论和实验结果。 GPM荧光计的改编允许进行自参考强度测量。理论和实验结果的结合证明了GPM的有效性及其适应性。随着分析物浓度的变化,相应的传感器强度变化可以通过几种方案进行量化,包括信号的数字化和数字积分或AC方法。要进行调整,需要使用参考发射器和寿命非常不同的对分析物敏感的分子。通过将传感器发射与参考发射成比例,可以消除激发源的波动和任何光学传输变化。

著录项

  • 作者

    Rowe, Heather Marie.;

  • 作者单位

    University of Virginia.;

  • 授予单位 University of Virginia.;
  • 学科 Chemistry Analytical.; Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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