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High Yield Synthesis of Aspect Ratio Controlled Graphenic Materials from Anthracite Coal in Supercritical Fluids
Author(s) -
Suchithra Padmajan Sasikala,
Lucile Henry,
Gülen Yesilbag Tonga,
Kai Huang,
Riddha Das,
Baptiste Giroire,
Samuel Marre,
Vincent M. Rotello,
Alain Pénicaud,
Philippe Poulin,
Cyril Aymonier
Publication year - 2016
Publication title -
acs nano
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.554
H-Index - 382
eISSN - 1936-086X
pISSN - 1936-0851
DOI - 10.1021/acsnano.6b01298
Subject(s) - anthracite , supercritical fluid , materials science , yield (engineering) , dispersity , quantum yield , nanotechnology , chemical engineering , coal , composite material , fluorescence , chemistry , organic chemistry , optics , polymer chemistry , physics , engineering
This paper rationalizes the green and scalable synthesis of graphenic materials of different aspect ratios using anthracite coal as a single source material under different supercritical environments. Single layer, monodisperse graphene oxide quantum dots (GQDs) are obtained at high yield (55 wt %) from anthracite coal in supercritical water. The obtained GQDs are ∼3 nm in lateral size and display a high fluorescence quantum yield of 28%. They show high cell viability and are readily used for imaging cancer cells. In an analogous experiment, high aspect ratio graphenic materials with ribbon-like morphology (GRs) are synthesized from the same source material in supercritical ethanol at a yield of 6.4 wt %. A thin film of GRs with 68% transparency shows a surface resistance of 9.3 kΩ/sq. This is apparently the demonstration of anthracite coal as a source for electrically conductive graphenic materials.

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