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We discuss the role of the in situ formation of graphite by nickel-assisted graphitization in the formation of networks consisting of well sintered platelets during the SPS and the design possibilities of porous carbon materials produced by phase separation in nickel graphite composites.
X-ray diffraction pattern of 1000 °C temperature annealed film confirms the formation of graphite structure.
Further growth proceeds via the formation of graphite nanosheets – without further influence of the nanotube support.
The nucleation enhancement was attributed to the formation of graphite or amorphous carbon during the pre-treatment step.
Nowadays there is a growing interest in studying the influence of primary austenite structure and the formation of graphite particles during solidification to correlate with the formation of microshrinkage or even shrinkage defects on castings.
Because of the carbon diffusion into the substrate and the formation of graphite at the interface, direct deposition of adherent diamond coatings on Fe-based materials is difficult.
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In addition, XPS analysis reveals the formation of graphite-like carbon, demonstrating that iron oxide particles catalyse the decomposition of toluene vapour.
The formation of graphite-like structure of RGOA indicates the efficient removal of oxygen-containing groups from GO during the simultaneous self-assembly and reduction process.
For the C 331) surface, the delamination of the terrace C atoms can lead to the formation of graphite-like sp2 bonds, thereby reducing the energetically unfavorable dangling bonds.
Additionally, the formation of graphite-like species on the surface and small aromatic inside the micropores were distinguished.
The high selectivity to ethene is observed at both 350 and 500 °C with rapid formation of graphite-like coke species.
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