Beixue Yang, Zhangbin Yang, Z. Zhou, Jun Zhang, Jianning Bao
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引用次数: 0
摘要
导电聚合物复合材料(CPC)因其重量轻、成本低而有望成为金属导电材料的替代品。本研究以半结晶聚丙烯(PP)和无定形苯乙烯-丁二烯-苯乙烯三嵌段共聚物(SBS)为基体,通过熔融共混将导电炭黑(CB)颗粒引入基体,研究了基体结晶行为对导电聚合物复合材料电性能的影响。根据不同 CB 含量的 CPC 的电性能和渗流理论,得出 PP 基复合材料的渗流阈值为 1.8vol%,远低于 SBS 基复合材料的渗流阈值(5.4vol%)。偏光显微镜和差示扫描量热仪的分析证实,两种复合材料渗流阈值的显著差异是由结晶行为引起的,同时提出了结晶诱导的偏析结构。最后,分别对微结构和应用的流变行为和机械性能进行了表征。
Crystallization induced segregated structure for outstanding conductive property with low percolation threshold
Conductive polymer composites (CPCs) are promising alternatives to metal conductive materials due to their light-weight and low-cost. This work investigates the effect of the crystallization behavior of the matrix on the electrical property of CPCs, where semi-crystalline polypropylene (PP) and amorphous styrene-butadiene-styrene tri-block copolymer (SBS) are selected as a matrix, respectively, and conductive carbon black (CB) particles are introduced into matrixes by melting blending. Based on the electrical properties of CPCs with various CB contents and percolation theory, the percolation threshold of 1.8 vol% in PP matrix composites is obtained, much lower than that of SBS matrix composites (5.4 vol%). The analysis with a polarizing microscope and differential scanning calorimeter confirms that such a significant difference in percolation threshold between two composites is due to the crystallization behavior while the crystallization induced segregated structure is proposed. Finally, the rheology behaviors and mechanical properties are characterized for microstructures and applications, respectively.