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Characterization of epoxy functionalized graphite nanoparticles and the physical properties of epoxy matrix nanocomposites

机译:环氧官能化石墨纳米粒子的表征和环氧基质纳米复合材料的物理性质

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摘要

This work presents a novel approach to the functionalization of graphite nanoparticles. The technique provides a mechanism for covalent bonding between the filler and matrix, with minimal disruption to the sp2 hybridization of the pristine graphene sheet. Functionalization proceeded by covalently bonding an epoxy monomer to the surface of expanded graphite, via a coupling agent, such that the epoxy concentration was measured as approximately 4 wt.%. The impact of dispersing this material into an epoxy resin was evaluated with respect to the mechanical properties and electrical conductivity of the graphite-epoxy nanocomposite. At a loading as low as 0.5 wt.%, the electrical conductivity was increased by five orders of magnitude relative to the base resin. The material yield strength was increased by 30% and Young's modulus by 50%. These results were realized without compromise to the resin toughness.
机译:这项工作为石墨纳米粒子的功能化提出了一种新颖的方法。该技术提供了一种在填料与基质之间共价键合的机制,同时对原始石墨烯片材的sp2杂交的破坏最小。通过使环氧单体通过偶联剂共价键合到膨胀石墨的表面上来进行官能化,使得测得的环氧浓度为约4重量%。相对于石墨-环氧纳米复合材料的机械性能和电导率,评估了将该材料分散到环氧树脂中的影响。在低至0.5重量%的负载下,相对于基础树脂,电导率增加了五个数量级。材料的屈服强度提高了30%,杨氏模量提高了50%。在不损害树脂韧性的情况下实现了这些结果。

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