A powder-metallurgy-based strategy toward three-dimensional graphene-like network for reinforcing copper matrix composites

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作者
Xiang Zhang
Yixin Xu
Miaocao Wang
Enzuo Liu
Naiqin Zhao
Chunsheng Shi
Dong Lin
Fulong Zhu
Chunnian He
机构
[1] School of Materials Science and Engineering and Tianjin Key Laboratory of Composite and Functional Materials,
[2] Tianjin University,undefined
[3] Joint School of National University of Singapore and Tianjin University,undefined
[4] International Campus of Tianjin University,undefined
[5] School of Mechanical Science and Engineering,undefined
[6] Huazhong University of Science and Technology,undefined
[7] Collaborative Innovation Center of Chemical Science and Engineering (Tianjin),undefined
[8] Key Laboratory of Advanced Ceramics and Machining Technology,undefined
[9] Ministry of Education,undefined
[10] Tianjin University,undefined
[11] Department of Industrial and Manufacturing Systems Engineering,undefined
[12] Kansas State University,undefined
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摘要
Three-dimensional graphene network is a promising structure for improving both the mechanical properties and functional capabilities of reinforced polymer and ceramic matrix composites. However, direct application in a metal matrix remains difficult due to the reason that wetting is usually unfavorable in the carbon/metal system. Here we report a powder-metallurgy based strategy to construct a three-dimensional continuous graphene network architecture in a copper matrix through thermal-stress-induced welding between graphene-like nanosheets grown on the surface of copper powders. The interpenetrating structural feature of the as-obtained composites not only promotes the interfacial shear stress to a high level and thus results in significantly enhanced load transfer strengthening and crack-bridging toughening simultaneously, but also constructs additional three-dimensional hyperchannels for electrical and thermal conductivity. Our approach offers a general way for manufacturing metal matrix composites with high overall performance.
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