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载有“末端单体单元”的多壁碳纳米管,用于制备肾上腺素印迹聚合物基电化学传感器。

Multiwalled carbon nanotubes bearing 'terminal monomeric unit' for the fabrication of epinephrine imprinted polymer-based electrochemical sensor.

机构信息

Analytical Division, Department of Chemistry, Faculty of Science, Banaras Hindu University, Varanasi-221005, Uttar Pradesh, India.

出版信息

Biosens Bioelectron. 2013 Jul 15;45:114-22. doi: 10.1016/j.bios.2013.01.042. Epub 2013 Feb 9.

DOI:10.1016/j.bios.2013.01.042
PMID:23455050
Abstract

Carbon-nanotubes play a pivotal role in molecularly imprinted polymer technology for inculcating conducting property, high surface to volume ratio, and maximum porosity in the film texture. Contrary to the non-covalent heterogeneous dispersion of pure (unmodified) multiwalled carbon nanotubes in the imprinted polymer film, the homogeneous distribution of their functionalized derivative was found more effective to augment the sensitivity of the measurement. This could be made feasible using multiwalled carbon nanotubes bearing terminal monomeric unit (termed as "CNT-mer") for the polymerization (one CNT-mer in each repeating unit). In this work, the CNT-mer entails a N-hydroxyphenyl maleimide functionality to be utilized in the chain propagation with simultaneous imprinting of epinephrine in the polymeric network. This system, when casted on the tip of a pencil graphite electrode, responded a highly sensitive and selective response for epinephrine, prevalent in aqueous and real samples at ultratrace level (linear range 0.09-5.90 ng mL(-1), limit of detection 0.02 ng mL(-1), S/N=3), without any cross-reactivity and matrix effects. The proposed sensor is advantageous in obtaining enhanced differential pulse anodic stripping voltammetric current vis-a-vis the corresponding imprinted sensor modified with randomly dispersed flocculated multiwalled carbon nanotubes bundles. While the latter might restrict the interlayer diffusion of analyte in the film, the former sensor facilitated high diffusivity with the channelized electron transport to respond higher current. The CNT-mer dispersed sensor was found to be stable and rugged against mechanical stress and can be used, after regeneration, for more than hundred consecutive experiments in clinical settings.

摘要

碳纳米管在分子印迹聚合物技术中起着至关重要的作用,它可以赋予薄膜纹理导电性、高表面积与体积比和最大孔隙率。与纯(未修饰)多壁碳纳米管在印迹聚合物膜中无规异质分散相反,其功能化衍生物的均匀分布被发现更有效地提高了测量的灵敏度。这可以通过使用带有末端单体单元的多壁碳纳米管(称为“CNT-mer”)来实现,用于聚合(每个重复单元中有一个 CNT-mer)。在这项工作中,CNT-mer 带有 N-羟基苯马来酰亚胺官能团,用于与肾上腺素同时在聚合物网络中进行链增长印迹。该系统被浇铸在铅笔石墨电极的尖端上,对肾上腺素表现出高度敏感和选择性的响应,在痕量水平(线性范围 0.09-5.90ng/mL,检测限 0.02ng/mL,S/N=3)下,在水相和真实样品中普遍存在,没有任何交叉反应和基质效应。与用随机分散的絮凝多壁碳纳米管束修饰的相应印迹传感器相比,该传感器具有获得增强的差分脉冲阳极溶出伏安电流的优势。虽然后者可能会限制分析物在膜中的层间扩散,但前者传感器有利于高扩散性和通道化的电子传输,从而响应更高的电流。发现 CNT-mer 分散传感器具有机械应力稳定性和坚固性,可以在临床环境中进行一百多次连续实验后进行再生。

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