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聚吡咯纳米纤维和分子印迹聚合物复合材料用于识别硝基芳香族化合物。

Composites of polyaniline nanofibers and molecularly imprinted polymers for recognition of nitroaromatic compounds.

机构信息

Department of Chemistry and Shanghai Key Laboratory of Green Chemistry and Chemical Process, East China Normal University, 3663 Zhongshan Road(N), Shanghai, 200062, PR China.

出版信息

Chemistry. 2011 May 16;17(21):5989-97. doi: 10.1002/chem.201002709. Epub 2011 Apr 6.

Abstract

This paper reports a monomer strategy for imprinting of 1,3-dinitrobenzene (DNB) molecules at the surface of conductive functional polyaniline nanofibers (PANI) for the first time. It has been demonstrated that the vinyl functional monomer layer on the PANI surface can not only direct the selective occurrence of imprinting polymerization, but can also drive DNB templates into the polymer through charge-transfer complexing interactions between DNB and functionalized PANI. These two basic processes lead to the formation of DNB-imprinted polymers at the surface of polyaniline nanofibers. The capacity to uptake DNB shows that selectivity coefficient in the nanofibers polymers is nearly three times as high as that of traditional imprinted materials and the nanofibers polymers also possess high selectivity toward DNB in comparison to similar nitroaromatic compounds. A linear response of DNB concentration between 2.20×10(-8) and 3.08×10(-6) M was exhibited with a detection limit of 7.33×10(-9) M (S/N=3). These results reported here could form the basis of a new strategy for preparing various polymer-coating layers on polyaniline supports and the molecular imprinting techniques discussed could also find applications in the fields of separation, trace detection, and environmental monitoring.

摘要

本文首次报道了一种单体策略,用于在导电功能化聚苯胺纳米纤维(PANI)表面印迹 1,3-二硝基苯(DNB)分子。已经证明,PANI 表面上的乙烯基功能单体层不仅可以指导印迹聚合的选择性发生,而且可以通过 DNB 和功能化 PANI 之间的电荷转移络合相互作用将 DNB 模板驱动到聚合物中。这两个基本过程导致在聚苯胺纳米纤维表面形成 DNB 印迹聚合物。对 DNB 的摄取能力表明,纳米纤维聚合物中的选择性系数几乎是传统印迹材料的三倍,并且与类似的硝基芳烃化合物相比,纳米纤维聚合物对 DNB 也具有高选择性。DNB 浓度在 2.20×10(-8)和 3.08×10(-6) M 之间表现出线性响应,检测限为 7.33×10(-9) M(S/N=3)。这里报道的结果可以为在聚苯胺载体上制备各种聚合物涂层层的新策略奠定基础,并且讨论的分子印迹技术也可以在分离、痕量检测和环境监测等领域找到应用。

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