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Preparation and characterization of derivatized microparticles immobilized in hydrogel membranes for optical chemical sensing based on polymer swelling.

机译:固定在水凝胶膜上的衍生化微粒的制备和表征,用于基于聚合物溶胀的光学化学传感。

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摘要

Hydrogel membranes containing aminated microparticles have been investigated for reflectance based optical sensing. The membranes were evaluated by UV/Vis spectrophotometry, for potential use in a remote distributive fiber optic chemical sensor. This work describes efforts for improving the signal and decreasing the overall response time of the membranes. The microparticles were prepared by dispersion and seeded emulsion polymerization techniques. The microparticles were derivatized to introduce pH sensitivity. The hydrogel membranes containing swellable microparticles are turbid. Scattering occurs at the microparticle-hydrogel interface and is based on refractive index changes accompanying polymer swelling. The particles swell in response to hydrogen ion concentration, causing them to reflect less light. Therefore, the membrane reflects light as a function of pH.; There are many factors that control poly(VBC) particle size and distribution using dispersion polymerization. The factors that influence particle size were investigated using a factorial design experiment and systematic studies. The results indicate that increasing the solvency of the continuous phase, initiator concentration, monomer concentration, temperature and decreasing the stabilizer concentration lead to larger particle diameters. Any factor or combination of factors that enhances the solubility of the growing polymer, generally leads to increased particle diameters.; Poly(vinyl alcohol), PVA, membranes containing aminated poly(vinylbenzyl chloride-co-trichlorophenyl acrylate) microparticles were prepared and characterized. The incorporation of trichlorophenyl acrylate, TCPA, in the microparticle formulation increases the hydrophilicity and increases the microporosity of the microparticles. As a result, the rate of diffusion is enhanced, producing membranes with faster response times, compared to aminated poly(VBC). Incorporating TCPA in the formulation significantly decreased the response time, but the magnitude of signal was only slightly increased.; Using a seeded emulsion polymerization technique, porous 1.2 m m poly(VBC) microparticles were prepared. The particles were derivatized with diethanolamine and embedded in a PVA hydrogel and characterized. The response time of these membranes were faster than the membranes containing poly(VBC-co-TCPA). The signal change was also much larger, approximately 10 times greater. The membrane turbidity increased with increasing thickness and microparticle concentration. A decrease in signal occurred for highly crosslinked microparticles and for high ionic strength solutions.
机译:已经研究了含有胺化微粒的水凝胶膜用于基于反射率的光学传感。通过紫外/可见光分光光度法对膜进行了评估,以潜在地用于远程分布式光纤化学传感器中。这项工作描述了改善信号并减少膜的整体响应时间的努力。通过分散和种子乳液聚合技术制备微粒。微粒被衍生以引入pH敏感性。含有可溶胀微粒的水凝胶膜是浑浊的。散射发生在微粒与水凝胶的界面处,并基于伴随聚合物溶胀的折射率变化。颗粒响应于氢离子浓度而溶胀,使其反射较少的光。因此,膜反射的光是pH的函数。有许多因素可以通过分散聚合控制聚(VBC)的粒径和分布。使用析因设计实验和系统研究研究了影响粒径的因素。结果表明,增加连续相的溶解能力,引发剂浓度,单体浓度,温度和降低稳定剂浓度会导致较大的粒径。增强正在生长的聚合物的溶解度的任何因素或因素的组合通常会导致粒径增加。制备并表征了聚乙烯醇,PVA,包含胺化的聚(乙烯基苄基氯-丙烯酸三氯苯酯共)微粒的膜。在微粒制剂中掺入丙烯酸三氯苯基酯TCPA增加了亲水性并增加了微粒的微孔率。结果,与胺化的聚(VBC)相比,扩散速率得到了提高,从而产生了具有更快响应时间的膜。在配方中加入TCPA可显着缩短响应时间,但信号强度仅略有增加。使用种子乳液聚合技术,制备了多孔1.2 m m聚(VBC)微粒。将颗粒用二乙醇胺衍生,并包埋在PVA水凝胶中并进行表征。这些膜的响应时间比包含聚(VBC-co-TCPA)的膜更快。信号变化也大得多,大约大10倍。膜的浊度随厚度和微粒浓度的增加而增加。对于高度交联的微粒和对于高离子强度的溶液,信号降低。

著录项

  • 作者

    Miele, Eric William.;

  • 作者单位

    University of New Hampshire.;

  • 授予单位 University of New Hampshire.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 205 p.
  • 总页数 205
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

  • 入库时间 2022-08-17 11:48:10

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