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功能化聚吡咯薄膜:合成、表征及在化学和生物传感器中的潜在应用。

Functionalized polypyrrole film: synthesis, characterization, and potential applications in chemical and biological sensors.

机构信息

Joint Department of Biomedical Engineering, North Carolina State University and University of North Carolina at Chapel Hill, Raleigh, North Carolina 27695, USA.

出版信息

ACS Appl Mater Interfaces. 2009 Jul;1(7):1599-606. doi: 10.1021/am900267e.

Abstract

In this paper, we report the synthesis of a carboxyl-functionalized polypyrrole derivative, a poly(pyrrole-N-propanoic acid) (PPPA) film, by electrochemical polymerization, and the investigation of its basic properties via traditional characterization techniques such as confocal-Raman, FTIR, SEM, AFM, UV-vis, fluorescence microscopy, and contact-angle measurements. The experimental data show that the as-prepared PPPA film exhibits a hydrophilic nanoporous structure, abundant -COOH functional groups in the polymer backbone, and high fluorescent emission under laser excitation. On the basis of these unique properties, further experiments were conducted to demonstrate three potential applications of the PPPA film in chemical and biological sensors: a permeable and permselective membrane, a membrane with specific recognition sites for biomolecule immobilization, and a fluorescent conjugated polymer for amplification of fluorescence quenching. Specifically, the permeability and permselectivity of ion species through the PPPA film are detected by means of rotating-disk-electrode voltammetry; the specific recognition sites on the film surface are confirmed with protein immobilization, and the amplification of fluorescence quenching is measured by the addition of a quenching agent with fluorescence microscopy. The results are in good agreement with our expectations.

摘要

本文通过电化学聚合的方法合成了一种羧基功能化的聚吡咯衍生物——聚(吡咯-N-丙酸)(PPPA)薄膜,并通过共聚焦拉曼、FTIR、SEM、AFM、UV-vis、荧光显微镜和接触角测量等传统表征技术研究了其基本性质。实验数据表明,所制备的 PPPA 薄膜具有亲水性纳米多孔结构、聚合物主链中丰富的-COOH 官能团以及在激光激发下的高荧光发射。基于这些独特的性质,进一步进行了实验以证明 PPPA 薄膜在化学和生物传感器中的三个潜在应用:可渗透和选择性的膜、用于生物分子固定化的具有特定识别位点的膜以及用于荧光猝灭放大的荧光共轭聚合物。具体来说,通过旋转圆盘电极伏安法检测离子物种通过 PPPA 薄膜的渗透性和选择性;通过蛋白质固定化来确认薄膜表面的特异性识别位点,并通过荧光显微镜测量加入荧光猝灭剂时荧光猝灭的放大。结果与我们的预期相符。

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