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Investigating nanohybrid material based on 3D CNTs@Cu nanoparticle composite and imprinted polymer for highly selective detection of chloramphenicol

机译:研究基于3D CNTs @ Cu纳米粒子复合材料和压印聚合物的纳米杂化材料,用于氯霉素的高选择性检测

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Nanotechnology holds great promise for the fabrication of versatile materials that can be used as sensor platforms for the highly selective detection of analytes. In this research article we report a new nanohybrid material, where 3D imprinted nanostructures are constructed. First, copper nanoparticles are deposited on carbon nanotubes and then a hybrid structure is formed by coating molecularly imprinted polymer on 3D CNTs@Cu NPs; and a layer by layer assembly is achieved. SEM and AFM revealed the presence of Cu NPs (100-500 nm) anchored along the whole length of CNTs, topped with imprinted layer. This material was applied to fabricate an electrochemical sensor to monitor a model veterinary drug, chloramphenicol. The high electron transfer ability and conductivity of the prepared material produced sensitive response, whereas, molecular imprinting produces selectivity towards drug detection. The sensor responses were found concentration dependent and the detection limit was calculated to be 10 mu M (S/N = 3). Finally, we showed how changing the polymer composition, the extent of cross linking, and sensor layer thickness greatly affects the number of binding sites for the recognition of drug. This work paves the way to build variants of 3D imprinted materials for the detection of other kinds of biomolecules and antibiotics. (C) 2017 Elsevier B.V. All rights reserved.
机译:纳米技术在制造通用材料方面具有广阔的前景,这些材料可以用作高度选择性检测分析物的传感器平台。在这篇研究文章中,我们报告了一种新的纳米混合材料,其中构建了3D印迹纳米结构。首先,将铜纳米颗粒沉积在碳纳米管上,然后通过将分子印迹聚合物涂覆在3D CNTs @ Cu NPs上形成杂化结构。并实现了逐层组装。扫描电镜和原子力显微镜揭示了沿整个碳纳米管锚定的铜纳米颗粒(100-500 nm)的存在,上面覆盖有压印层。将该材料用于制造电化学传感器,以监测模型兽药氯霉素。所制备材料的高电子传递能力和电导率产生敏感的响应,而分子印迹产生对药物检测的选择性。发现传感器响应与浓度有关,检测极限计算为10μM(S / N = 3)。最后,我们展示了如何改变聚合物组成,交联程度和传感器层厚度如何极大地影响识别药物的结合位点数量。这项工作为构建3D印迹材料变体以检测其他种类的生物分子和抗生素铺平了道路。 (C)2017 Elsevier B.V.保留所有权利。

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