Growth of single and bilayer graphene by filtered cathodic vacuum arc technique
Author(s) -
A. K. Kesarwani,
O. S. Panwar,
Sanjay R. Dhakate,
R. K. Rakshit,
Vidya Nand Singh,
Atul Bisht,
Ashish Kumar
Publication year - 2015
Publication title -
journal of vacuum science and technology a vacuum surfaces and films
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.583
H-Index - 112
eISSN - 1520-8559
pISSN - 0734-2101
DOI - 10.1116/1.4936258
Subject(s) - graphene , raman spectroscopy , materials science , transmission electron microscopy , vacuum arc , substrate (aquarium) , graphene foam , graphene nanoribbons , etching (microfabrication) , scanning electron microscope , thin film , nanotechnology , analytical chemistry (journal) , composite material , optics , chemistry , cathode , physics , oceanography , layer (electronics) , chromatography , geology
The authors present a viable process to grow the high quality graphene films with control over number of layers by the filtered cathodic vacuum arc (FCVA) technique. In the FCVA process, the different carbon concentrations can be controlled by precisely tuning the arc time (1–4 s). The arc generated carbon was deposited on the nickel catalyst at 800 °C, annealed for 10 min, and cooled down to room temperature in the presence of hydrogen gas, resulting in the graphene films with control over number of layers. Prior to arcing, hydrogen etching of nickel was carried out to clean the surface of the substrate. A growth model to prepare the high quality graphene has also been proposed. The as-grown graphene films were transferred to different substrates and are characterized by Raman spectroscopy, optical microscopy, high resolution transmission electron microscopy, and atomic force microscopy to determine the number of layers present in these films. Raman spectra of the prepared graphene films exhibit change i...
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