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Coupled quantum mechanical/molecular mechanical modeling of the fracture of defective carbon nanotubes and graphene sheets

机译:缺陷碳纳米管和石墨烯片断裂的耦合量子力学/分子力学建模

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Coupled quantum mechanical/molecular mechanical (QM/MM) calculations were used to study the effects of large defects and cracks on the mechanical properties of carbon nanotubes and graphene sheets. The semi-empirical method PM3 was used to treat the QM subdomains and a Tersoff-Brenner potential was used for the molecular mechanics; some of the QM calculations were also done using density functional theory (DFT). Scaling of the Tersoff-Brenner potential so that the modulus and overall stress-strain behavior of the QM and MM models matched quite closely was essential for obtaining meaningful coupled calculations of the mechanical properties. The numerical results show that at the nanoscale, the weakening effects of holes, slits, and cracks vary only moderately with the shape of the defect, and instead depend primarily on the cross section of the defect perpendicular to the loading direction and the structure near the fracture initiation point. The fracture stresses for defective graphene sheets are in surprisingly good agreement with the Griffith formula for defects as small as 10 A, which calls into question the notion of nanoscale flaw tolerance. The energy release rate at the point of crack extension in graphene was calculated by the J-integral method and exceeds twice the surface energy density by 10% for the QM(DFT)/MM results, which indicates a modest lattice trapping effect.
机译:量子力学/分子力学(QM / MM)耦合计算用于研究大缺陷和裂纹对碳纳米管和石墨烯片的力学性能的影响。使用半经验方法PM3处理QM子域,并使用Tersoff-Brenner势进行分子力学研究。一些QM计算也使用密度泛函理论(DFT)进行。缩放Tersoff-Brenner势能,以使QM和MM模型的模量和整体应力-应变行为非常紧密地匹配,对于获得有意义的机械性能耦合计算至关重要。数值结果表明,在纳米尺度上,孔,缝和裂纹的弱化作用仅随缺陷的形状而适度变化,而主要取决于垂直于加载方向的缺陷的横截面和附近的结构。骨折的起始点。缺陷石墨烯片的断裂应力与格里菲斯公式(对于小至10 A的缺陷)非常吻合,这引起了人们对纳米级缺陷容忍度的质疑。石墨烯中裂纹扩展点的能量释放速率是通过J积分方法计算的,对于QM(DFT)/ MM结果,其表面能密度超过表面能量密度的两倍,为10%,这表明晶格陷阱效应适中。

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