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Poly(lactic acid)-multi-wall carbon nanotube conductive biopolymer nanocomposite vapour sensors

机译:聚乳酸-多壁碳纳米管导电生物聚合物纳米复合蒸气传感器

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摘要

Conductive biopolymer nanocomposites (CPC) have been prepared by dispersing multi-wall carbon nanotubes (CNT) "guest conducting filler" in biopolymer, poly(lactic acid) (PLA) "host matrix" via solution mixing to develop volatile organic compounds (VOC) sensors. CPC transducers were fabricated by spray layer by layer (sLbL) technique and the derived sensors chemo-resistive properties have been investigated by exposition to a set of organic vapours (chloroform, methanol, toluene and water) exhibiting different physical properties such as solubility, polarity and molecular size. The influence of both vapour nature and CNT content has been elucidated and explained on the basis of solubility parameters and percolation theory. The selectivity of PLA/CNT CPC towards vapours, was found to be well correlated to solubility parameters. Among all, chloroform was the vapour that led to the highest response of sensors. To determine the influence of crystallization on conductive network architecture and thus on chemoresistive characteristics of PLA/CNT, a comparative study has been carried out before and after annealing of sensors. The modification induced by this thermal treatment on both surface morphology and bulk crystallinity of PLA/CNT CPC, has clearly evidenced by atomic force microscopy (AFM) and differential scanning calorimetry (DSC) are found to be responsible for important changes in vapour sensing behaviour.
机译:通过将多壁碳纳米管(CNT)“来宾导电填料”分散在生物聚合物,聚乳酸(PLA)“主体基质”中以制备挥发性有机化合物(VOC),从而制备了导电生物聚合物纳米复合材料(CPC)传感器。 CPC传感器是通过逐层喷雾(sLbL)技术制造的,并且通过暴露于一组表现出不同物理特性(例如溶解度,极性)的有机蒸气(氯仿,甲醇,甲苯和水)来研究派生的传感器的耐化学性。和分子大小。在溶解度参数和渗流理论的基础上,阐明并解释了蒸气性质和CNT含量的影响。发现PLA / CNT CPC对蒸气的选择性与溶解度参数密切相关。其中,氯仿是导致传感器响应最高的蒸气。为了确定结晶对导电网络结构的影响,从而对PLA / CNT的化学电阻特性的影响,已经在传感器退火前后进行了比较研究。这种热处理对PLA / CNT CPC的表面形态和整体结晶度的诱导修饰,已由原子力显微镜(AFM)和差示扫描量热法(DSC)清楚地证明是蒸气感测行为的重要变化的原因。

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