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Effect of Stone-Wales Defect on Mechanical Properties of Gr/epoxy Nanocomposites

机译:石-威尔氏缺陷对Gr /环氧纳米复合材料力学性能的影响

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摘要

Due to its superior mechanical properties, graphene (Gr) has the potential to achieve high performance polymer-based nanocomposites. Previous studies have proved that defects in the Gr sheets could greatly reduce the mechanical properties of Gr, while the Stone-Wales (SW) defect was found to enhance the interfacial mechanical strength between Gr and epoxy. However, the combined effects of defects on the overall mechanical properties of Gr/epoxy nanocomposites have not been well understood. In this paper, the effect of the SW defect on the mechanical properties of Gr/epoxy nanocomposites was systematically investigated by using molecular dynamic simulations. The simulation results showed that the SW defect would degrade the mechanical properties of nanocomposites, including the Young’s modulus and in-plane shear modulus. Surprisingly, the transverse shear modulus could be remarkably enhanced with the existence of SW. The reinforcing mechanisms were mainly due to two aspects: (1) the SW defect could increase the surface roughness of the Gr, preventing the slippage between Gr and epoxy during the transverse shea; and (2) the nanocomposite with defective Gr enables a higher interaction energy than that with perfect graphene. Additionally, the effects of temperature, the dispersion and volume fraction of Gr were also investigated.
机译:由于其卓越的机械性能,石墨烯(Gr)具有实现高性能聚合物基纳米复合材料的潜力。先前的研究已经证明,Gr板中的缺陷会大大降低Gr的机械性能,而Stone-Wales(SW)缺陷会增强Gr和环氧树脂之间的界面机械强度。但是,对于Gr /环氧纳米复合材料的整体机械性能,缺陷的综合影响尚未得到很好的理解。本文通过分子动力学模拟系统地研究了SW缺陷对Gr /环氧纳米复合材料力学性能的影响。仿真结果表明,SW缺陷会降低纳米复合材料的机械性能,包括杨氏模量和面内剪切模量。出乎意料的是,随着SW的存在,横向剪切模量可以显着提高。增强机理主要是由于两个方面:(1)SW缺陷会增加Gr的表面粗糙度,防止横向剪切时Gr和环氧树脂之间的打滑。 (2)具有缺陷Gr的纳米复合材料比具有完美石墨烯的纳米复合材料具有更高的相互作用能。此外,还研究了温度,Gr的分散度和体积分数的影响。

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