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Study on the evolution of graphene defects and the mechanical and thermal properties of gnps/cu during cvd repair process

  • Harbin Institute of Technology
  • State Power Investment Corporation Limited
  • China Aerospace Science and Technology Corporation
  • School of Astronautics, Harbin Institute of Technology
  • Academy of Military Medical Science China

Research output: Contribution to journalArticlepeer-review

Abstract

Graphene has extremely high theoretical strength and electrothermal properties, and its application to Cu-based composites is expected to achieve a breakthrough in the performance of existing composites. As a nano-reinforced body, graphene often needs a long time of ball milling to make it uniformly dispersed, but the ball milling process inevitably brings damage to the graphene, causing the performance of the composite to deviate from expectations. Therefore, this paper uses CH4 as a carbon source to repair graphene through a CVD process to prepare low-damage gra-phene/Cu composites. The process of graphene defect generation was studied through the ball milling process. The effects of defect content and temperature on the graphene repair process were studied separately. The study found that the graphene defect repair process, the decomposition process of oxygen-containing functional groups, and the deposition process of active C atoms ex-isted simultaneously in the CVD process. When the repair temperature was low, the C atom deposition process and the oxygen-containing functional group decomposition process dominated. In addition, when the repair temperature is high, the graphene defect repair process dominated. 3 wt% graphene/Cu composites were prepared by pressure infiltration, and it was found that the bending strength was increased by 48%, the plasticity was also slightly increased, and the thermal conductivity was increased by 10–40%. This research will help reduce graphene defects, improve the intrinsic properties of graphene, and provide theoretical guidance for the regulation of C defects in composites.

Original languageEnglish
Article number130
JournalMaterials
Volume15
Issue number1
DOIs
StatePublished - 1 Jan 2022

Keywords

  • Chemical vapor deposition
  • Cu matrix composite
  • Defect
  • Graphene

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