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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Interfacial strengthening and self-healing effect in graphene-copper nanolayered composites under shear deformation
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Interfacial strengthening and self-healing effect in graphene-copper nanolayered composites under shear deformation

机译:剪切变形下石墨烯-铜纳米层复合材料的界面强化和自愈作用

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The mechanism of interfacial strengthening and self-healing effect in graphene-copper nanolayered (GCuNL) composites under shear deformation is investigated at a theory and quantitative level. It is found that the interfacial constraining effect between graphene and copper layer highly improves the shear strength and toughness of GCuNL composites. The interlayer distance between graphene monolayers and the crystal stacking orientation of copper layers plays an important role in the shear yield strength of composites. The shear toughness of composites is jointly determined by the crystal orientation of copper layer and the chirality of graphene. The shear failure strain of zigzag-based composites is remarkably higher than that of armchair-based composites, while the shear failure stress of (100)stacking composites is larger than that of (111)-stacking composites due to rotation of slip bands. Furthermore, we find a remarkable self-healing effect in GCuNL composites by interfacial trapping dislocations. The self-healing ability is determined by the interlayer distance between graphene monolayer. Synthesizing both the strengthening and self-healing effect, the optimum distance between graphene monolayers is ranging from 5 to 15 nm. (C) 2016 Elsevier Ltd. All rights reserved.
机译:从理论和定量的角度研究了石墨烯-铜纳米层(GCuNL)复合材料在剪切变形下的界面强化和自愈效应。发现石墨烯与铜层之间的界面约束作用极大地改善了GCuNL复合材料的剪切强度和韧性。石墨烯单层之间的层间距离和铜层的晶体堆叠方向在复合材料的剪切屈服强度中起重要作用。复合材料的剪切韧性由铜层的晶体取向和石墨烯的手性共同决定。之字形基复合材料的剪切破坏应变明显高于扶手椅基复合材料,而由于滑带的旋转,(100)堆叠复合材料的剪切破坏应力大于(111)堆叠复合材料的剪切破坏应力。此外,我们发现界面俘获位错在GCuNL复合材料中具有显着的自我修复作用。自我修复能力取决于石墨烯单层之间的层间距离。综合增强和自愈效果,石墨烯单层之间的最佳距离为5至15 nm。 (C)2016 Elsevier Ltd.保留所有权利。

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