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具有改性基体表面的石墨烯增强铝基复合材料的力学性能:分子动力学研究

Mechanical properties of graphene-reinforced aluminium composite with modified substrate surface: a molecular dynamics study.

作者信息

Liu Jun, Zhang Yingyan, Zhang Henin, Yang Jie

机构信息

School of Engineering, RMIT University, Bundoora, VIC 3083, Australia.

出版信息

Nanotechnology. 2021 Feb 19;32(8):085712. doi: 10.1088/1361-6528/abc712.

Abstract

Due to its extraordinary properties, graphene has been widely used as reinforcing nanofillers to enhance the mechanical properties of polymer- or metal-based composites. However, the weak interfacial interaction between the matrix and graphene is still a major bottleneck that considerably hinders its reinforcing effectiveness and efficiency. This study presents an atomistic study via molecular dynamics simulation on a chemical modification strategy where the aluminium (Al) substrate is modified with AlO (with or without covalent bonds formed between AlO and graphene) or AlC to achieve significantly improved interfacial shear strength and overall mechanical properties of graphene-reinforced aluminium (Al/Gr) composites. Numerical results show that this strategy works very well and among the three cases considered, modifying Al substrate by AlO without covalent bonds formed at the interface between AlO and graphene produces the strongest interfacial interaction and the best mechanical properties. In the presence of covalent bonds, however, the reinforcing effect is adversely affected due to the sp-sp bond transformation which partially degrades graphene. The present work provides, for the first time, valuable insight into the role of substrate surface modification on the mechanical performance of Al/Gr nanocomposites.

摘要

由于其非凡的性能,石墨烯已被广泛用作增强纳米填料,以提高聚合物基或金属基复合材料的力学性能。然而,基体与石墨烯之间较弱的界面相互作用仍然是一个主要瓶颈,严重阻碍了其增强效果和效率。本研究通过分子动力学模拟对一种化学改性策略进行了原子尺度研究,该策略是用AlO(AlO与石墨烯之间形成或不形成共价键)或AlC对铝(Al)基体进行改性,以显著提高石墨烯增强铝(Al/Gr)复合材料的界面剪切强度和整体力学性能。数值结果表明,该策略效果良好,在所考虑的三种情况中,用AlO对Al基体进行改性且在AlO与石墨烯之间的界面处不形成共价键时,产生的界面相互作用最强,力学性能最佳。然而,在存在共价键的情况下,由于sp-sp键的转变会使石墨烯部分降解,增强效果会受到不利影响。本工作首次为基体表面改性对Al/Gr纳米复合材料力学性能的作用提供了有价值的见解。

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