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A Controlled Carburization Process to Obtain Graphene–Fe 3 C–Fe Composites
Author(s) -
You Yi,
Yoshimura Masamichi,
Cholake Sagar,
Lee GwanHyoung,
Sahajwalla Veena,
Joshi Rakesh
Publication year - 2018
Publication title -
advanced materials interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.671
H-Index - 65
ISSN - 2196-7350
DOI - 10.1002/admi.201800599
Subject(s) - graphene , materials science , chemical vapor deposition , substrate (aquarium) , graphene oxide paper , grain boundary , nanotechnology , chemical engineering , carbide , metallurgy , microstructure , oceanography , engineering , geology
Significant progresses have been made toward the understanding of graphene growth on metal substrates via chemical vapor deposition method. Cu and Ni are the most studied catalysts for producing high‐quality graphene. Among the transitional metal group, Fe also has the potential as a substrate for growth of graphene. However, the complexity of phase transformation in Fe and the thermodynamically preferable formation of iron carbide at the ambient temperature limit extensive use of Fe for graphene growth. Herein, the concurrent formation of graphene and Fe 3 C by optimizing the growth time and cooling rate in graphene growth on Fe substrate is reported. Also, the influence of Fe phases (ferrite and austenite) on the graphene growth is studied. Graphene grain growth on Fe substrate is observed via ultrahigh temperature confocal microscope. The in situ observation confirms that graphene grains are grown around the Fe grain boundaries during the cooling process. The systematic study provides a profound insight into graphene growth on Fe substrate and thus paves a way toward development of graphene‐based steel products for various applications.

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