具有分段结构的还原石墨烯氧化物填充聚合物复合材料的详细形态和电子传输

Vitalii A. Kuznetsov, M. Gudkov, Vladimir A. Ermakov, K. Shiyanova, Lidiya V. Shestopalova, Andrey A. Fedorov, Evgeny Yu. Gerasimov, Evgenii A. Suprun
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引用次数: 0

摘要

具有离析网络结构的聚合物复合材料是在低含量的导电纳米颗粒上包覆电介质聚合物颗粒,颗粒之间的连接数量决定了复合材料的机械性能,而纳米颗粒形成的渗流网络则决定了复合材料的导电性能。本文研究了以聚氯乙烯(PVC)、聚偏二氟乙烯-共四氟乙烯(P(VDF-TFE))和超高分子量聚乙烯(UHMWPE)为基础的具有离析结构的还原氧化石墨烯(rGO)填充复合材料的形态和电子传输特性。对微瘤形成的横截面进行的光学和电子显微镜研究表明,其形态取决于聚合物--超高分子量聚乙烯基复合材料中的 rGO 层最薄,而 PVC 和 P(VDF-TFE) 基复合材料中的 rGO 层较厚。在较宽的温度范围内,复合材料和 rGO 纸的电传导是通过相同的跳变传导机制实现的,这使得复合材料可以应用于考虑使用纯 rGO 的场合。由于向环境开放的 rGO 层较厚,在需要分层材料的应用中,例如在锂离子电池或超级电容器中,基于 PVC 和 P(VDF-TFE)的复合材料比基于 UHMWPE 的复合材料更具吸引力。当机械强度非常重要时,基于超高分子量聚乙烯的复合材料作为导电材料更有前途。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detailed Morphology and Electron Transport in Reduced Graphene Oxide Filled Polymer Composites with a Segregated Structure
Polymer composites of a segregated network structure are dielectric polymer granules coated with electrically conductive nanoparticles at a low content, the quantity of the junctions between the granules determines the composites' mechanical properties, and the percolation network formed by the nanoparticles determines the electrical conductivity. Here, the morphology and electron‐transport properties in reduced graphene oxide (rGO)‐filled composites with a segregated structure based on polyvinyl chloride (PVC), poly(vinylidene fluoride‐co‐tetrafluoroethylene) (P(VDF‐TFE)), and ultrahigh‐molecular‐weight polyethylene (UHMWPE) are studied. Optical and electron microscopies study of the microtome‐formed cross sections have shown the morphology to be dependent on the polymer—the thinnest rGO layers are in UHMWPE‐based composites, the thicker rGO layers are in PVC‐ and P(VDF‐TFE)‐based ones. The electrical conduction of the composites and the rGO‐paper occurs through the same hopping conduction mechanisms within the wide temperature range, which allows to use the composites in applications where pure rGO is considered. Owing to thicker rGO layers open to the environment, PVC‐ and P(VDF‐TFE)‐based composites are more attractive, rather than the UHMWPE ones, in applications where layered materials are needed, for example, in lithium‐ion batteries or supercapacitors. The UHMWPE‐based composites look more promising as electrically conductive materials when mechanical strength is important.
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