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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Graphene defect engineering for optimizing the interface and mechanical properties of graphene/copper composites
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Graphene defect engineering for optimizing the interface and mechanical properties of graphene/copper composites

机译:石墨烯缺陷工程,用于优化石墨烯/铜复合材料的界面和机械性能

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A graphene defect engineering strategy was proposed in this work to tailor the interface and mechanical properties of graphene/Cu composites. Plasma treatment was used to create surface defects (5-10 nm nanopores) on the basal-plane of starting graphene material but without considerably damaging the graphene structure. It was demonstrated that the CuxOy oxides were in situ formed at the defect sites of plasma-treated graphene in the sintering process, which played a bridging role in enhancing the interfacial adhesion of graphene with Cu matrix. Compared to the composites with untreated graphene, the composites with plasma-treated graphene exhibited a higher strength enhancement, and better interface stability in response to thermal cycling, which was ascribed to the CuxOy coordinated improved interfacial bonding that provided efficient load transfer and thermal stress relaxation. Nevertheless, the overlong plasma treatment could severely damage the graphene structure and result in a reduced strength enhancement. This study suggests that the rational defect engineering of graphene is an efficient approach for optimizing the interface and mechanical properties of graphene/metal composites. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在这项工作中提出了石墨烯缺陷工程策略,以定制石墨烯/ Cu复合材料的界面和机械性能。血浆处理用于在起始石墨烯材料的基面上产生表面缺陷(5-10nm纳米孔),但不显着损害石墨烯结构。结果证明,在烧结过程中,在血浆处理的石墨烯的缺陷位点原位是在烧结过程中形成的桥接作用,在提高石墨烯与Cu基质的界面粘合方面发挥了桥接作用。与具有未处理的石墨烯的复合材料相比,具有等离子体处理的石墨烯的复合材料表现出更高的强度增强,并且响应于热循环的更好的界面稳定性,其归因于提供有效的负载转移和热应力松弛的助康的改进的界面键合。 。然而,重叠的等离子体处理可能严重损坏石墨烯结构并导致强度增强。该研究表明,石墨烯的合理缺陷工程是优化石墨烯/金属复合材料的界面和机械性能的有效方法。 (c)2018年elestvier有限公司保留所有权利。

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