Tensile strength and nanohardness of Cu with graphene / Cu composite coating: atomistic simulation

E.A. Rozhnova ORCID logo , L.R. Safina ORCID logo , K.A. Krylova ORCID logo show affiliations and emails
Received 09 April 2025; Accepted 12 May 2025;
Citation: E.A. Rozhnova, L.R. Safina, K.A. Krylova. Tensile strength and nanohardness of Cu with graphene / Cu composite coating: atomistic simulation. Lett. Mater., 2025, 15(2) 112-119
BibTex   https://doi.org/10.48612/letters/2025-2-112-119

Abstract

The graphene/Cu composite coating increases the ultimate tensile strength of the copper surface by 2 times, and the hardness of this surface by 6%.The rapid development of technology, industry, and aerospace requires the search for new materials with high strength, light weight, and enhanced corrosion resistance. Graphene-based composites have unique mechanical properties and can be used as protective and reinforcing coatings to increase the strength of metal surfaces. This paper investigates the strength and hardness of Cu surface with a graphene / Cu composite nanocoating using the classical molecular dynamics simulation by LAMMPS software package. The deformation mechanisms during uniaxial stretching and indentation of coated copper are also considered. It has been found that a 2.4 nm thick composite coating increases the tensile strength of the Cu surface by more than two times. The hardening of Cu with a composite coating under uniaxial tension was associated with strong carbon bonds in the graphene network of the composite coating and with dislocation hardening at the interface between Cu and the coating. The failure of Cu with a composite coating under uniaxial tension begins with the coating failure. The hardness of the coated Cu surface increased by 6 %. Such a small increase in hardness was associated with a relatively low hardness of the composite. As a result, the graphene / Cu composite coating was found to be a promising strengthening and protective material for metal surfaces.

References (59)

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Funding

1. Russian Science Foundation - 20-72-10112-Π
2. State Assignement of IMSP RAS (Young Scientist Laboratory) -