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Catheline et al. applied volatile THF (tetrahydrofuran) to produce graphenide solutions (solutions of negatively charged graphene flakes) by dissolution of graphite intercalation compound (GIC) KC8 [30].
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Samples of PSINPs-inks were prepared by dissolution of metal-loaded membranes in DMF (5% w/w) and dropwise deposited onto the surface of graphite-epoxy composite electrodes [31] (GECE) followed by air-drying at room temperature before sensor evaluation.
Once crystal growth initiated at the seed interface, seed dissolution was stopped and further growth was assisted by dissolution of feed crystal which is at relatively high temperature.
Within the melted zone, transverse cracks and the dissolution of the graphite nodules could be observed.
In top-down process, graphene or modified graphene sheets are produced by separation/exfoliation of graphite or graphite derivatives (such as graphite oxide (GO) and graphite fluoride.
GO is a single layer of graphite oxide, often produced by exfoliation of graphite oxide.
Graphene is synthesized by exfoliation of graphite or reduced graphite oxide.
An extremely small amount of Pt ions produced by oxidative dissolution of the Pt anode diffused to the graphite cathode through the electrolyte solution and were reduced to form Pt nanoparticles having a cubic structure.
Kraus, D. et al. Nanosecond formation of diamond and lonsdaleite by shock compression of graphite.
This was flnally accomplished by the use of graphite crucibles brasqued with previeusly fused magnesia.
Ion currents were affected more by the amount of graphite rather than its crystal size.
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