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Molecular dynamics based simulations to study failure morphology of hydroxyl and epoxide functionalised graphene

机译:基于分子动力学的模拟研究羟基和环氧化物官能化石墨烯的研究失败形态

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In this article, molecular dynamics based simulations were performed to study the effects of functional groups such as hydroxyl and epoxide on the mechanical strength and failure morphology of graphene oxide. Reactive force field potential was used to capture the interatomic interactions between carbon, oxygen and hydrogen atoms. In contrast to previous observations, atomistic simulations predicted a transition in the failure morphology of hydroxyl functionalised graphene from brittle to ductile as a function of its spatial distribution on graphene. This transition in failure morphology from brittle to ductile was gradual in nature and was observed at lower percentage coverage of graphene in the range of 25-50%. Failure morphologies depict that hydroxyl groups tend to boost the ductility through chains and elongated rings formation at lower percentage coverage. Also, the electrostatic charge redistribution and epoxide to ether transformation were found to be the decisive mechanisms behind the ductile response shown by hydroxyl and epoxide groups, respectively. (C) 2017 Elsevier B.V. All rights reserved.
机译:在本文中,进行了基于分子动力学的模拟,以研究官能团如羟基和环氧化物的作用对石墨烯氧化物的机械强度和失效形貌。反应力场电位用于捕获碳,氧气和氢原子之间的内部相互作用。与先前的观察结果相比,原子模拟预测了羟基官能化石墨烯的破坏形态从脆性到延展性的过渡,作为石墨烯的空间分布的函数。这种失败形态的过渡性来自脆性至韧性的性质本质上是逐渐逐渐的,并且以较低的石墨烯覆盖率观察到25-50%的较低百分比。失败形态描绘了羟基倾向于通过链条和细长环形成较低百分比覆盖率的延伸性。而且,发现静电电荷再分布和环氧化物分别是乙醚转化的衍生物响应分别如羟基和环氧基团所示的决定性机制。 (c)2017 Elsevier B.v.保留所有权利。

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