Cycling performances indicated that showed higher discharge capacities than commercial SnO2 after 50 cycles. Sepiolite could act as a steady skeleton, carbon coating principally led sepiolite from an isolated to an electric state, and decoration of nanoscale SnO2 was beneficial to the functionization of sepiolite. Natural sepiolite (Sep) nanofibers were coated with carbon and nanoscale SnO2 to prepare an emerging nanocomposite ( ), which exhibited enhanced electrochemical performance. Tin Oxide-Carbon-Coated Sepiolite Nanofibers with Enhanced Lithium-Ion Storage PropertyĠ Hunan Key Lab of Mineral Materials and Application, Central South University, Changsha 410083, Chinaġ Centre for Mineral Materials, School of Minerals Processing and Bioengineering, Central South University, Changsha 410083, ChinaĢ School of Chemistry and Chemical Engineering, Central South University, Changsha 410083, Chinaģ State Key Lab of Powder Metallurgy, Central South University, Changsha 410083, China High Initial Reversible Capacity and Long Life of Ternary SnO2-Co-carbon Nanocomposite Anodes for Lithium-Ion Batteries High Initial Reversible Capacity and Long Life of Ternary SnO2-Co-carbon. Three dimensional Graphene aerogels as binder-less, freestanding, elastic and high-performance electrodes for lithium-ion batteries Three dimensional Graphene aerogels as binder-less, freestanding, elastic and. SnO2-Based Nanomaterials: Synthesis and Application in Lithium-Ion Batteries and Supercapacitors SnO2-Based Nanomaterials: Synthesis and Application in Lithium-Ion Batteries. Composites of tin oxide and different carbonaceous materials as negative electrodes in lithium-ion batteries Growth of SnO2 Nanoflowers on N-doped Carbon Nanofibers as Anode for Li- and Na-ion BatteriesĬomposites of tin oxide and different carbonaceous materials as negative. Growth of SnO2 Nanoflowers on N-doped Carbon Nanofibers as Anode for Li- and.
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