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Morphology-Tuned Synthesis of NiCo2O4-Coated 3D Graphene Architectures Used as Binder-Free Electrodes for Lithium-Ion Batteries

Title
Morphology-Tuned Synthesis of NiCo2O4-Coated 3D Graphene Architectures Used as Binder-Free Electrodes for Lithium-Ion Batteries
Author(s)
Zhang, ChunfeiYu, Jong-Sung
Issued Date
2016-03
Citation
Chemistry: A European Journal, v.22, no.13, pp.4422 - +
Type
Article
Author Keywords
morphology controlnickelanodesgraphenelithium-ion batteries
Keywords
ANODE MATERIALAnodesBindersBinsCARBON TEXTILESCoated MaterialsCollector EfficiencyCommercial ApplicationsElectric BatteriesElectric DischargesElectrodepositionElectrodeposition MethodsElectrodeposition TechniqueElectrodesElectrolytesENERGY-STORAGEFACILE SYNTHESISFoamsGrapheneHIGH-CAPACITYHIGH-PERFORMANCE SUPERCAPACITORHigh Specific Surface AreaHOLLOW SPHERESIonsLILithiumLithium-Ion BatteriesLithium-Ion Battery AnodesLithium AlloysLithium CompoundsMorphological CharactersMorphologyMorphology ControlNANOWIRE ARRAYSNickelPOROUS NICO2O4Secondary BatteriesThree-Dimensional Graphene
ISSN
0947-6539
Abstract
Nanostructured NiCo2O4 is directly grown on the surface of three-dimensional graphene-coated nickel foam (3D-GNF) by a facile electrodeposition technique and subsequent annealing. The resulting NiCo2O4 possesses a distinct flower or sheet morphology, tuned by potential or current variation electrodeposition, which are used as binder-free lithium-ion battery anodes for the first time. Both samples exhibit high lithium storage capacity, profiting from the unique binder-free electrode structures. The flower-type NiCo2O4 demonstrates high reversible discharge capacity (1459 mAh g-1 at 200 mA g-1) and excellent cyclability with around 71 % retention of the reversible capacity after 60 cycles, which are superior to the sheet-type NiCo2O4. Such superb performance can be attributed to high volume utilization efficiency with unique morphological character, a well-preserved connection between the active materials and the current collector, a short lithium-ion diffusion path, and fast electrolyte transfer in the binder-free NiCo2O4-coated 3D graphene structure. The simple preparation process and easily controllable morphology make the binder-free NiCo2O4/3D-GNF hybrid a potential material for commercial applications. Flower power: 3D nanostructured flower-type and sheet-type NiCo2O4/3D graphene-coated nickel foam composites were synthesized by a facile and tunable electrodeposition method. Both composites have mesoporous structure and exhibit high specific surface area, which favor not only higher Li storage capacity, but also excellent cycling performance as a binder-free electrode for lithium-ion batteries (see figure). © 2016 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.
URI
http://hdl.handle.net/20.500.11750/2709
DOI
10.1002/chem.201504386
Publisher
Wiley-VCH Verlag
Related Researcher
  • 유종성 Yu, Jong-Sung
  • Research Interests Materials chemistry; nanomaterials; electrochemistry; carbon and porous materials; fuel cell; battery; supercapacitor; sensor and photochemical catalyst
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Department of Energy Science and Engineering Light, Salts and Water Research Group 1. Journal Articles

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