![]() The electrochemical performance in supercapacitor has been characterized, and the as-prepared electrode shows a significant high specific capacitance of 211.4 F/g at 0.5 A/g and 177.2 F/g at 20 A/g with no visible performance decay even after 2500 cycles testing. The homogenously distributed and intercalated nanoparticles between rGO nanosheets form a highly conductive 3D carbon network with rGO, and present a hierarchical pore size structure, enabling fast ion and electron transport, as well as remarkable specific surface area. The 3D nanocomposite consists of carbon-coated Fe2O3 nanoparticle clusters and rGO nanosheets. These properties indicate a good potential to achieve high performance electrochemical devices.ĪB - Three-dimensional (3D) reduced graphene oxide (rGO) anchored carbon-coated Fe2O3 core-shell nanoparticles has been developed successfully through a simple one-pot hydrothermal process followed by a further annealing treatment. N2 - Three-dimensional (3D) reduced graphene oxide (rGO) anchored carbon-coated Fe2O3 core-shell nanoparticles has been developed successfully through a simple one-pot hydrothermal process followed by a further annealing treatment. T1 - Three-dimensional graphene anchored core-shell nanoparticles as supercapacitor electrodes These properties indicate a good potential to achieve high performance electrochemical devices.", These properties indicate a good potential to achieve high performance electrochemical devices.Ībstract = "Three-dimensional (3D) reduced graphene oxide (rGO) anchored carbon-coated Fe2O3 core-shell nanoparticles has been developed successfully through a simple one-pot hydrothermal process followed by a further annealing treatment. Three-dimensional (3D) reduced graphene oxide (rGO) anchored carbon-coated Fe2O3 core-shell nanoparticles has been developed successfully through a simple one-pot hydrothermal process followed by a further annealing treatment. ![]()
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