Oxide nanostructures hyperbranched with thin and hollow metal shells for high-performance nanostructured battery electrodes.
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Summary
In battery electrode application, the thin hollow metal branches can provide a mechanical protection of the oxide core and a highly conductive path for charges and evidently improve the electrochemical performance with higher specific capacity, rate capability, and capacity retention than the unmodified Co3O4 counterparts.
- Type
- article
- Published
- 2014-06-01
- Cited by
- 38
- References
- 46
- OpenAlex
- https://openalex.org/W24610815
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:22611548
Keywords
Agronomy, Geography, Irrigation, Environmental science, Forestry
References
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- True Performance Metrics in Electrochemical Energy Storage
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- Fabrication of Ni/Al2O3 Core-Shell Nanowire Arrays in Porous Alumina Membranes
- Ternary self-assembly of ordered metal oxide-graphene nanocomposites for electrochemical energy storage.
- Oxygen bridges between NiO nanosheets and graphene for improvement of lithium storage.
- High-quality metal oxide core/shell nanowire arrays on conductive substrates for electrochemical energy storage.
- A Transmission Electron Microscopy Study of the Reactivity Mechanism of Tailor-Made CuO Particles toward Lithium
- Hollow iron oxide nanoparticles for application in lithium ion batteries.
- Self-supported hydrothermal synthesized hollow Co3O4 nanowire arrays with high supercapacitor capacitance
- High rate capabilities Fe3O4-based Cu nano-architectured electrodes for lithium-ion battery applications
- Deciphering the multi-step degradation mechanisms of carbonate-based electrolyte in Li batteries
- Highly efficient plasmon-enhanced dye-sensitized solar cells through metal@oxide core-shell nanostructure.
Cited by
- Construction of Co/Co 3 O 4 –C ternary core-branch arrays as enhanced anode materials for lithium ion batteries
- Self-supported hierarchical hollow-branch cobalt oxide nanorod arrays as binder-free electrodes for high-performance lithium ion batteries
- Self-supported porous CoO semisphere arrays as binder-free electrodes for high-performance lithium ion batteries
- Flexible free-standing Fe2O3/graphene/carbon nanotubes hybrid films as anode materials for high performance lithium-ion batteries
- Carbon cloth supported vanadium pentaoxide nanoflake arrays as high-performance cathodes for lithium ion batteries
- Synthesis of hierarchical porous NiO nanotube arrays for supercapacitor application
- Synthesis of nickel oxide nanospheres by a facile spray drying method and their application as anode materials for lithium ion batteries
- Synthesis of hollow nickel oxide nanotubes by electrospinning with structurally enhanced lithium storage properties
- Rational design of metal oxide nanocomposite anodes for advanced lithium ion batteries
- Fabrication of free-standing NiCo2O4 nanoarrays via a facile modified hydrothermal synthesis method and their applications for lithium ion batteries and high-rate alkaline batteries
- Design and synthesis of three-dimensional hierarchical ordered porous carbons for supercapacitors
- Template engaged synthesis of hollow ceria-based composites.
- Encapsulation of nanoscale metal oxides into an ultra-thin Ni matrix for superior Li-ion batteries: a versatile strategy.
- Reduction‐cleavable hyperbranched polymers with limited intramolecular cyclization via click chemistry
- Atomic layer deposited cobalt oxide: An efficient catalyst for NaBH4 hydrolysis
- Self-standing porous LiMn2O4 nanowall arrays as promising cathodes for advanced 3D microbatteries and flexible lithium-ion batteries
- Nanoarchitectured Array Electrodes for Rechargeable Lithium‐ and Sodium‐Ion Batteries
- Fabrication of three-dimensional porous cobalt network-supported cobalt oxides nanoflake arrays for electrochemical energy storage
- Hermetically Coated and Well-Separated Co3 O4 Nanophase within Porous Graphitic Carbon Nanosheets: Synthesis, Confinement Effect, and Improved Lithium-Storage Capacity and Durability.
- Energy Storage Performance Enhancement by Surface Engineering of Electrode Materials
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