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High strength and conductivity copper/graphene composites prepared by severe plastic deformation of graphene coated copper powder

机译:高强度和电导率铜/石墨烯复合材料通过石墨烯涂层铜粉的严重塑性变形制备

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摘要

In order to uniformly disperse graphene in the copper matrix, the complete coating of few-layers high-quality graphene on the surface of the copper powder was realized by chemical vapor deposition, and the graphene coated copper powder is sequentially formed through vacuum hot pressing, hot extrusion, and cold drawing processes. The results show that during the vacuum hot pressing, the metallurgical bonding between original copper powders is hindered by the graphene with a relatively complete structure. And the copper grains are recrystallized and refined in the hot extrusion process, and then stretched into a long and thin fibrous structure during the cold drawing process. Besides, the graphene is partially agglomerated during the hot extrusion process, and is dispersed again during the cold drawing process and gradually oriented along the drawing direction. Finally, the graphene and the copper matrix form a network interpenetrating structure, which improves the mechanical and electrical properties of the composite synergistically. The tensile strength and conductivity of the composite wire drawn to 1 mm reached 573.3 MPa and 5.79 × 10~7 S/m, respectively, achieving a breakthrough in the performance of copper-based materials.
机译:为了在铜基中均匀分散石墨烯,通过化学气相沉积实现铜粉末表面的几层高质量石墨烯,通过真空热压顺序形成石墨烯涂覆的铜粉,热挤压和冷绘制过程。结果表明,在真空热压期间,原始铜粉末之间的冶金键合由石墨烯受到相对完整的结构。并且铜晶粒在热挤出过程中重结晶并精制,然后在冷拉伸过程中拉伸成长而薄的纤维结构。此外,石墨烯在热挤出过程期间部分地凝聚,并且在冷拉伸过程中再次分散并沿着拉伸方向逐渐取向。最后,石墨烯和铜基形成网络互穿结构,这改善了复合材料的协同效应的机械和电性能。伸缩丝的拉伸强度和电导率分别达到573.3MPa和5.79×10〜7 s / m,实现了铜基材料性能的突破。

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