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首页> 外文期刊>Electrochimica Acta >Electrosynthesis of pyrrole 3-carboxylic acid copolymer films and nanotubes with tunable degree of functionalization for biomedical applications
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Electrosynthesis of pyrrole 3-carboxylic acid copolymer films and nanotubes with tunable degree of functionalization for biomedical applications

机译:具有可调官能度的吡咯3-羧酸共聚物膜和纳米管的电合成,用于生物医学应用

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摘要

Tailoring polypyrrole (PPy), an electroactive polymer, with functional groups to which a variety of bioactive molecules can be tethered is highly attractive for building biological structures on conducting surfaces for a range of biomedical applications. In this respect, we investigate the effects of three independent electrosynthesis parameters, namely the applied potential, the composition of the comonomer solution and the film thickness on the incorporation of carboxylic acid-functionalized pyrrole units (Py-COOH) into polypyrrole/Py-COOH copolymer films. FT-IR, XPS and fluorescence microscopy results show that a larger Py-COOH content is inserted in films electrosynthesized at low potential, that the surface functionality of the copolymer films increases with the molar percentage of Py-COOH in the comonomer solution, and that Py-COOH units are preferentially incorporated in the earlier stage of the electrosynthesis process. The method is further adapted for preparing functionalized PPy copolymer nanotubes with potential application in drug delivery. Specifically, functionalized copolymer nanotubes are electrosynthesized through the template method in polycarbonate membrane. Carboxylic acid groups available at the outer surface of these nanostructures are then derivatized to covalently immobilize poly(ethylene glycol) chains, a protein-repellent polymer, so as to enhance the antifouling properties of these promising delivery vehicles.
机译:定制聚吡咯(PPy)是一种具有多种生物活性分子可以束缚的官能团的电活性聚合物,对于在一系列生物医学应用的导电表面上构建生物结构非常有吸引力。在这方面,我们研究了三个独立的电合成参数,即施加电势,共聚单体溶液的组成和膜厚度对将羧酸官能化吡咯单元(Py-COOH)引入聚吡咯/ Py-COOH中的影响共聚物薄膜。 FT-IR,XPS和荧光显微镜结果表明,在低电势下电合成的薄膜中插入了较大的Py-COOH含量,共聚物薄膜的表面官能度随共聚单体溶液中Py-COOH的摩尔百分比而增加,并且Py-COOH单元优先加入电合成过程的早期阶段。该方法还适用于制备功能化的PPy共聚物纳米管,其在药物递送中具有潜在的应用。具体地,通过模板法在聚碳酸酯膜中电合成官能化的共聚物纳米管。然后将这些纳米结构的外表面上可用的羧酸基团衍生化,以共价固定蛋白质排斥性聚合物聚乙二醇,从而增强这些有前途的运输工具的防污性能。

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