March 25, 2022
Conference Paper

A Finite Difference Analysis of the Effect of Graphene Additions on the Electrical Conductivity of Polycrystalline Copper

Abstract

A finite-difference method was used to explore the effect of graphene on the bulk electrical conductivity of copper-graphene composites. In this capacity, grain orientation information from pure copper and copper-graphene composites were used to generate synthetic 3D microstructures. The electrical conductivity of these microstructures were calculated using the finite difference method assuming different average grain sizes. From these calculations, we demonstrate that when high-conductivity grain boundaries are present within the microstructure arising from the presence of graphene, an increase in the bulk electrical conductivity is observed. On the other hand, the difference in textures between copper and copper-graphene composites may not account for a significant difference in bulk electrical conductivity. In comparison, the copper grain size has a considerably larger effect on electrical conductivity as previously anticipated. This is one of the first demonstrations of a physical basis for enhanced conductivity composites and presents pathways for further investigations on the effects of composite microstructural features, material interfaces and graphene content on electrical performance.

Published: March 25, 2022

Citation

Frazier W.E., B. Gwalani, J.D. Escobar Atehortua, J.A. Silverstein, and K.S. Kappagantula. 2022. A Finite Difference Analysis of the Effect of Graphene Additions on the Electrical Conductivity of Polycrystalline Copper. In Proceedings of the 151st Annual Meeting and Exhibition of The Minerals, Metals and Materials Society, (TMS 2022), February 27- March 3, 2022, Anaheim, CA. Minerals, Metals and Materials Series, 705 - 712. Cham:Springer. PNNL-SA-166346. doi:10.1007/978-3-030-92381-5_67

Research topics