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首页> 外文期刊>Polymer Composites >Wrapping Carbon Nanotubes by Biopolymer Chains: Role of Nanointerfaces in Detection of Vapors in Conductive Polymer Composite Transducers
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Wrapping Carbon Nanotubes by Biopolymer Chains: Role of Nanointerfaces in Detection of Vapors in Conductive Polymer Composite Transducers

机译:通过生物聚合物链包裹碳纳米管:纳米接口在导电聚合物复合换能器中的蒸汽检测中的作用。

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Chitosan (CS) and hydrophobic-modified chitosan (HM-CS) chains were wrapped onto multiwalled carbon nanotubes (MWNTs) and introduced to polyvinyl alcohol (PVA) matrices as nanohybrid conductive polymer composites (CPCs) for detection of polar vapors. The effect of grafted alkyl groups on polarity of CS chains were studied by quantum mechanics (QM). The designed composites were applied as sensitive layers to clarify the response mechanism in CPCs gas sensors. It was realized that the wrapped biopolymers intensely influenced the sensitivity of the composites. Experiment results specified that the nature of biomacromolecules and their interactions with vapor molecules affects the resistance change in CPCs. The higher interaction of CS with polar vapor molecules caused more plasticization of polymer segments in the MWNTs connections. Such phenomenon enhanced the resistance change in the presence of analytes. Moreover, it was inferred that the semiconductor character of MWNTs has an important effect in the final signals. The more polar structure of CS in comparison with HM-CS enhanced the adsorption of vapor molecules on the surface of MWNTs, and the electron donor analytes decreased the conductivity of p-type MWNTs increasing the final responses. The presented results corroborate that the performance of CPCs gas sensors could be finely tuned through manipulation of the nanointerfaces. (C) 2015 Society of Plastics Engineers
机译:将壳聚糖(CS)和疏水改性的壳聚糖(HM-CS)链包裹在多壁碳纳米管(MWNT)上,并作为纳米杂化导电聚合物复合材料(CPC)引入聚乙烯醇(PVA)基质中,以检测极性蒸气。通过量子力学(QM)研究了接枝烷基对CS链极性的影响。设计的复合材料用作敏感层,以阐明CPCs气体传感器中的响应机制。已经意识到,包裹的生物聚合物强烈影响复合材料的敏感性。实验结果表明,生物大分子的性质及其与蒸气分子的相互作用会影响CPC的电阻变化。 CS与极性蒸气分子的较高相互作用导致MWNTs连接中的聚合物链段更多的可塑化。这种现象增强了分析物存在下的电阻变化。此外,据推测,MWNT的半导体特性在最终信号中具有重要作用。与HM-CS相比,CS的极性更强的结构增强了MWNT表面蒸气分子的吸附,并且电子给体分析物降低了p型MWNT的电导率,从而增加了最终响应。提出的结果证实,CPC气体传感器的性能可以通过操纵纳米界面进行微调。 (C)2015年塑料工程师学会

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