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Nanoscale layer of a minimized defect area of graphene and hexagonal boron nitride on copper for excellent anti-corrosion activity

Authors
Hwang, Jae HunShrestha, Bishnu KumarKim, Jun HeeSeo, Tae HoonPark, Chan HeeKim, Myung Jong
Issue Date
29-Jan-2022
Publisher
IOP Publishing Ltd
Keywords
graphene; boron nitride; chemical vapor deposition; anti-corrosion
Citation
NANOTECHNOLOGY, v.33, no.5
Journal Title
NANOTECHNOLOGY
Volume
33
Number
5
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/82671
DOI
10.1088/1361-6528/ac31e9
ISSN
0957-4484
Abstract
In this work, we synthesized a monolayer of graphene and hexagonal boron nitride (hBN) using chemical vapor deposition. The physicochemical and electrochemical properties of the materials were evaluated to determine their morphology. High-purity materials and their atomic-scale coating on copper (Cu) foil were employed to prevent fast degradation rate. The hexagonal two-dimensional (2D) atomic structures of the as-prepared materials were assessed to derive their best anti-corrosion behavior. The material prepared under optimized conditions included edge-defect-free graphene nanosheets (similar to 0.0034 mu m(2)) and hBN (similar to 0.0038 mu m(2)) per unit area of 1 mu m(2). The coating of each material on the Cu surface significantly reduced the corrosion rate, which was similar to 2.44 x 10(-2)/year and 6.57 x 10(-3)/year for graphene/Cu and hBN/Cu, respectively. Importantly, the corrosion rate of Cu was approximately 3-fold lower after coating with hBN relative to that of graphene/Cu. This approach suggests that the surface coating of Cu using cost-effective, eco-friendly, and the most abundant materials in nature is of interest for developing marine anti-corrosion micro-electronic devices and achieving surface modification of pure metals in industrial applications.
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