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Polymeric Submicron Optical Ion-Selective Sensors.

机译:聚合物亚微米光学离子选择性传感器。

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摘要

Ion-selective polymeric optical sensors -- ion optodes -- are a promising alternative to ion-selective electrodes and fluorescent dyes for analytical and biological applications, e.g. extra- and intracellular measurements. They are nontoxic, highly selective robust probes for ionic fluxes monitoring.;A large-scale fabrication of ion optodes using a solvent displacement method is introduced. This method is a single-batch process that does not require any additional steps. The influence of numerous parameters, e.g. surfactant concentration, solvent nature and membrane concentration, on the average size of the synthesized optodes was studied. The solvent displacement method allows control of the particle size in 200 nm to 30 mum range.;Ion optodes selective for sodium, potassium, and calcium cations were prepared and calibrated for hydrogen (pH), sodium, potassium, and calcium. Fabricated sensors demonstrated excellent selectivity, low drift, high stability and reproducibility.;Further studies of ion-optodes of different sizes but the same chemical composition revealed a significant shift in their response function. This bias is clearly seen for all fabricated optodes. A strong correlation between a calculated specific surface area and the apparent ion-exchange constant was observed. Considering this, it may be hypothesized that the surface phenomena are contributing to the overall optode response resulting in the observed effect. As a consequence, the response models, developed for the macroscopic ion optodes, cannot be easily applied to the probes at micron- and nano-scale.;A primary concern for continuous sensing application of optical sensors is photobleaching of lipophilic fluorescent dye which prevents quantitative fluorescence measurements. Quantum dots, known for their high photostability, brightness and broad excitation spectra with narrow emission bands, were incorporated into polymeric matrix. They excited a fluorophore indirectly, thus, reducing its photobleaching and increasing sensors life-time. We created a composite, quantum dots doped, polymeric sensor that can be integrated into high-throughput detection platforms, such as flow cytometry, chip-based micrototal analysis system technologies, or bundled optical fiber arrays.;Ultimately, a fabricated ion-optode was introduced into a Boolean logic gate serving as a reporting microparticle. It responded to the pH changes generated in situ by the enzyme logic system. The present work aimed scaling down the size of biocomputing functional units which might reach the information processing by single molecules associated with signal-transducing single nanoparticles.
机译:离子选择性聚合物光学传感器-离子光电二极管-是离子选择性电极和荧光染料的有前途的替代品,适用于分析和生物应用,例如细胞外和细胞内测量。它们是用于监测离子通量的无毒,高选择性的坚固探针。;介绍了使用溶剂置换法大规模制造离子光电二极管的方法。此方法是单批处理过程,不需要任何其他步骤。许多参数的影响,例如研究了表面活性剂浓度,溶剂性质和膜浓度,对合成光电二极管的平均尺寸进行了研究。溶剂置换法可将粒径控制在200 nm至30μm范围内。制备了对钠,钾和钙阳离子具有选择性的离子光电二极管,并针对氢(pH),钠,钾和钙进行了校准。制成的传感器表现出优异的选择性,低漂移,高稳定性和可重复性。对不同尺寸但化学组成相同的离子光电二极管的进一步研究表明其响应功能发生了显着变化。对于所有制造的光电二极管都可以清楚地看到这种偏置。观察到在计算的比表面积和表观离子交换常数之间有很强的相关性。考虑到这一点,可以假设表面现象对整个光电二极管响应做出了贡献,从而产生了观察到的效果。结果,针对宏观离子光电二极管开发的响应模型无法轻松应用于微米和纳米级的探针。连续传感应用光学传感器的主要考虑因素是亲脂性荧光染料的光漂白,这阻止了定量分析荧光测量。以其高光稳定性,亮度和窄发射带的宽激发光谱而闻名的量子点被并入了聚合物基体中。他们间接激发了荧光团,从而减少了其光致漂白并延长了传感器的使用寿命。我们创建了一种复合的,量子点掺杂的聚合物传感器,该传感器可以集成到高通量检测平台中,例如流式细胞仪,基于芯片的微总分析系统技术或捆绑的光纤阵列。被引入到布尔逻辑门中,作为报告微粒。它响应由酶逻辑系统原位产生的pH变化。本工作旨在缩小生物计算功能单元的尺寸,该单元可能通过与信号转导单个纳米颗粒相关的单个分子达到信息处理的目的。

著录项

  • 作者

    Bychkova, Valeriya.;

  • 作者单位

    Oregon State University.;

  • 授予单位 Oregon State University.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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