Structural changes in industrial glassy carbon as a function of heat treatment temperature according to Raman spectroscopy and X-ray diffraction data
Abstract
Changes in the structure of glassy carbon as a function of heat treatment temperature is investigated by Raman spectroscopy and X-ray diffraction measurements. It is shown that the glassy carbon samples studied can be described as poorly ordered turbostratic nanographite. An increase in temperature leads to some ordering with preservation of the general structural motif. Based on spectroscopic evidence, graphene sheet curvature in the high-temperature glassy carbon samples is suggested.
About the Authors
S. S. BukalovRussian Federation
Moscow
Ya. V. Zubavichus
Russian Federation
Moscow
L. A. Leites
Russian Federation
Moscow
A. I. Sorokin
Russian Federation
Moscow
A. S. Kotosonov
Russian Federation
Moscow
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Review
For citations:
Bukalov S.S., Zubavichus Ya.V., Leites L.A., Sorokin A.I., Kotosonov A.S. Structural changes in industrial glassy carbon as a function of heat treatment temperature according to Raman spectroscopy and X-ray diffraction data. Nanosystems: Physics, Chemistry, Mathematics. 2014;5(1):186-191.