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Optical Sensing Properties of Dithiocarbamate-Functionalized Microspheres Using a Polyvinylpyridine-Polyvinylbenzyl Chloride Copolymer

机译:使用聚乙烯基吡啶-聚乙烯基苄基氯共聚物的二硫代氨基甲酸酯官能化微球的光学传感特性

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摘要

In this study, a new modified optical chemical sensor based on swellable polymer microspheres is developed using a 5% copolymer of polyvinylpyridine-polyvinyl-benzyl chloride microspheres functionalized as the corresponding dithiocarbamate. This sensor demonstrated significant enhancements in sensitivity, dynamic range and response time. These improvements are related to the presence of pyridine in the polymer backbone, which is believed to increase the space between the groups, thus decreasing steric hindrance, and hence increasing substitution of the dithiocarbamate group. The hydrophilicity of pyridine also allows free movement of the solvent and analyte to and from the inside of the microspheres. These dithiocarbamate-derivatized polymer microspheres were embedded in a hydrogel matrix of polyvinylalcohol cross-linked with glutaraldehyde. This sensor responded selectively to Hg2+ solutions of different concentrations (1 × 10−5 M to 0.1 M). The observed turbidity measured as absorbance varied between 1.05 and 1.75 units at a wavelength of 700 nm. The response is based on the interaction between the metal cations with the negative charges of the deprotonated dithiocarbamate functional group, which led to neutratization of the charges and thus to polymer shrinking. As a result, an increase in the turbidity of the sensing element due to a change in the refractive index between the hydrogel and the polymer microspheres occured. The changes in the turbidity of the sensing element were measured as absorbance using a conventional spectrophotometer.
机译:在这项研究中,使用功能化为相应的二硫代氨基甲酸酯的聚乙烯基吡啶-聚乙烯基-苄基氯微球的5%共聚物,开发了一种基于可溶胀聚合物微球的新型改良光学化学传感器。该传感器在灵敏度,动态范围和响应时间方面显示出显着增强。这些改进与聚合物主链中吡啶的存在有关,据信吡啶增加了基团之间的空间,从而降低了位阻,从而增加了二硫代氨基甲酸酯基团的取代。吡啶的亲水性还允许溶剂和分析物自由进出微球内部。这些二硫代氨基甲酸酯衍生的聚合物微球被包埋在与戊二醛交联的聚乙烯醇的水凝胶基质中。该传感器对不同浓度(1×10 -5 M至0.1 M)的Hg 2 + 溶液有选择地响应。所测得的浊度作为吸光度,在700 nm波长下在1.05和1.75单位之间变化。该响应基于金属阳离子与去质子化的二硫代氨基甲酸酯官能团的负电荷之间的相互作用,这导致电荷中和,从而导致聚合物收缩。结果,由于水凝胶与聚合物微球之间的折射率的变化而导致感测元件的浊度增加。使用常规分光光度计测量感测元件的浊度变化作为吸光度。

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