
Graphene-based biomineral hybrid materials are synthesized by biomimetic mineralization of CO(2) into CaCO(3) in the presence of graphene oxide (GO) sheets. The hybrid film could be further reduced to a conductive graphene-CaCO(3) hybrid film. The GO/graphene CaCO(3) hybrid showed enhanced in vitro bone bioactivity with increased hydroxyapatite formation in simulated body fluid and good osteoblast cell viability.
Cell Survival, GRAPHITE OXIDE; IN-VITRO; SHEETS; FILMS; MINERALIZATION; OSTEOBLAST; MATRIX; CARBON; CACO3; MORPHOLOGY, Oxides, 3T3 Cells, Calcium Carbonate, Mice, Durapatite, Materials Testing, Animals, Graphite
Cell Survival, GRAPHITE OXIDE; IN-VITRO; SHEETS; FILMS; MINERALIZATION; OSTEOBLAST; MATRIX; CARBON; CACO3; MORPHOLOGY, Oxides, 3T3 Cells, Calcium Carbonate, Mice, Durapatite, Materials Testing, Animals, Graphite
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