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Electrical Conductivity and Rheological Behavior of Multiphase Polymer Composites Containing Conducting Carbon Black

机译:含导电炭黑的多相聚合物复合材料的电导率和流变行为

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Multiphase polymer composites of carbon black (CB), polypropylene (PP) and low density polyethylene (LDPE) were prepared by melt-mixing method to reduce the amount of CB in the conductive composites. SEM images showed that CB preferably located in LDPE phase and formed electrically conductive path. The measurement of conductive properties showed that the ternary materials possessed lower percolation than binary composites of CB/PP or CB/LDPE, the former was ~6 wt% and the latter was 9-10 wt%. Positive temperature coefficient (PTC) effects of the binary and ternary composites were investigated, indicating that the latter exhibited a relatively high PTC intensity. A rheological percolation estimated by a power law function is 2.66 wt% of CB loading, suggesting an onset of solid-like behavior at low frequencies. This difference between the electrical and rheological percolation thresholds may be understood in terms of the smaller CB-CB distance required for electrical conductivity as compared with that required to impede polymer mobility.
机译:通过熔融混合法制备了炭黑(CB),聚丙烯(PP)和低密度聚乙烯(LDPE)的多相聚合物复合材料,以减少导电复合物中的CB含量。 SEM图像表明,CB优选位于LDPE相中并形成导电路径。导电性能的测量结果表明,三元材料的渗透率比CB / PP或CB / LDPE的二元复合物低,前者为〜6 wt%,后者为9-10 wt%。研究了二元和三元复合材料的正温度系数(PTC)效应,表明后者显示出较高的PTC强度。由幂定律函数估计的流变渗透为CB负载的2.66 wt%,这表明在低频下会出现类似固体的行为。可以通过电导率所需的CB-CB距离与阻碍聚合物迁移率所需的CB-CB距离较小来理解电和流变渗透阈值之间的差异。

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