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The piezoresistive behaviors of polyethylene/foliated graphite nanocomposites

机译:聚乙烯/叶状石墨纳米复合材料的压阻行为

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A conductive nanocomposite with an ordered conductive network and low-percolation threshold were prepared by adding foliated graphite (FG) nanosheets to high-density polyethylene (HDPE). The piezoresistive behavior of the nanocomposites was investigated under different pressure ranges. There existed a critical pressure below which composite resistance decrease with the increase of pressure and above which resistance increased sharply with increasing of pressure. The critical pressure is a function of the concentration of FG and the sensitivity of the change in resistivity against the applied pressure strongly depended on the FG content. The critical pressures of the nanocomposites with FG concentration at 6 vol.%, 11 vol.%, 12 vol.%, are about 7 MPa, 10 MPa, and 12 MPa, respectively. After repeated pressure treatment, there was a gradual decrease in the change of conducting structure although a permanent damage occurred due to the irreversible deformation of polymer matrix. As a result, the piezoresistive behavior of HDPE/FG nanocomposites tended to be constant under cyclic compression. The behavior was accounted for by an extension of tunneling conduction theory to which provides a good approximation to the piezoresistive effect. (C) 2005 Elsevier Ltd. All rights reserved.
机译:通过向高密度聚乙烯(HDPE)中添加叶状石墨(FG)纳米片,制备了具有规则的导电网络和低渗透阈值的导电纳米复合材料。研究了纳米复合材料在不同压力范围内的压阻行为。存在一个临界压力,低于该临界压力时,复合电阻随压力的增加而减小,而高于该临界压力时,电阻随压力的增加而急剧增加。临界压力是FG浓度的函数,电阻率变化对施加压力的敏感性很大程度上取决于FG含量。 FG浓度为6体积%,11体积%,12体积%的纳米复合材料的临界压力分别为约7MPa,10MPa和12MPa。经过反复的压力处理后,尽管由于聚合物基体的不可逆变形而发生了永久性破坏,但导电结构的变化却逐渐减小。结果,HDPE / FG纳米复合材料的压阻行为在循环压缩下趋于恒定。该行为是由于隧穿传导理论的扩展而引起的,该理论为压阻效应提供了良好的近似值。 (C)2005 Elsevier Ltd.保留所有权利。

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