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Updated: Jul 27, 2026

Simultaneous Synthesis of Single-walled Carbon Nanotubes and Graphene in a Magnetically-enhanced Arc Plasma
Published on: February 2, 2012
Micron size graphene sheets synthesis by methane pyrolysis in an RF-ICP thermal plasma reactor
Reem Mahmoud1, François Gitzhofer1, Nicolas Abatzoglou1
1Department of Chemical and Biotechnological Engineering, Université de Sherbrooke, Sherbrooke, Qc, J1K 2R1, Canada.
Abstract:
Bottom-up synthesis of free-standing graphene using thermal plasma technology often results in flakes with smaller lateral dimensions (hundreds of nanometers) compared to top-down and substrate-based approaches (reaching centimeters in size) Dato (2019J. Mater. Res.34214-30). This limitation in size restricts the applicability of graphene in various applications. This study investigates a method to overcome this limitation by studying the reactor's quenching effect on the plasma plume exiting an radiofrequency inductively coupled thermal plasma thermal plasma torch. Local gas phase chemistry and graphene morphology were investigated during methane (CH4) pyrolysis in argon plasma. Natural quenching suppression led to a production of few-layer (2-5 layers), near-micrometer-sized un-supported graphene sheets (∼2.8µm perimeter) with less crumpling and a projected area of (2-5) × 105nm2. Raman, transmission electron microscopy, thermogravimetric analysis, and x-ray photoelectron spectroscopy (XPS) analysis confirmed the high quality of the synthesized graphene. Sp2carbon composition in the sample was calculated using theDparameter obtained from the differentiated C KLL Auger peak in the XPS spectrum. A correlation between the gas phase chemistry and the graphene morphology demonstrated the significant effect of plasma reactor natural quenching and recirculation on the graphene synthesis and offers a potential for controlling the structure of unsupported graphene. The current study provides valuable insights that can pave the way for the development of reactors with a definite control over the morphology of synthesized graphene.

