Nickel hexacyanoferrate nanoparticle electrodes for aqueous sodium and potassium ion batteries.
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Summary
Here, insertion/extraction of sodium and potassium ions in a low-strain nickel hexacyanoferrate electrode material for at least five thousand deep cycles at high current densities in inexpensive aqueous electrolytes is demonstrated.
- Type
- article
- Published
- 2011-11-07
- Cited by
- 963
- References
- 32
- OpenAlex
- https://openalex.org/W1978382294
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:5321411
Keywords
Materials science, Battery (electricity), Energy storage, Electrolyte, Nickel
References
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- Ferromagnetism of the Me3(Fe(CN)6)2.H2O compounds, where Me=Ni and Co
- Electrochemical Oxidation and Reduction of Thin Films of Prussian Blue
- Electrochemistry of polynuclear transition metal cyanides: Prussian blue and its analogues
- Electrochemical studies of the factors influencing the cycle stability of Prussian Blue films
Cited by
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- Biologically derived melanin electrodes in aqueous sodium-ion energy storage devices
- Exfoliated-SnS₂ restacked on graphene as a high-capacity, high-rate, and long-cycle life anode for sodium ion batteries.
- Energy Harvesting by Nickel Prussian Blue Analogue Electrode in Neutralization and Mixing Entropy Batteries.
- Zerovalent Fe, Co and Ni nanoparticle toxicity evaluated on SKOV‐3 and U87 cell lines
- Transition Metal Carbide Complex Architectures for Energy-Related Applications.
- Electrochemical characterization of NaFePO4 as positive electrode in aqueous sodium-ion batteries
- Fabrication of Asymmetric Supercapacitors Based on Coordination Polymer Derived Nanoporous Materials
- Sulfur covalently bonded graphene with large capacity and high rate for high-performance sodium-ion batteries anodes
- Dual hetero atom containing bio-carbon: Multifunctional electrode material for High Performance Sodium-ion Batteries and Oxygen Reduction Reaction
- Na2NixCo1 − xFe(CN)6: A class of Prussian blue analogs with transition metal elements as cathode materials for sodium ion batteries
- Carbon Electrodes for K-Ion Batteries.
- Copper and nickel hexacyanoferrate nanostructures with graphene-coated stainless steel sheets for electrochemical supercapacitors
- Nano- and Microscale Architectures for Energy Storage Systems
- Roles of Processing, Structural Defects and Ionic Conductivity in the Electrochemical Performance of Na3MnCO3PO4 Cathode Material
- A High‐Power Symmetric Na‐Ion Pseudocapacitor
- New faces of porous Prussian blue: interfacial assembly of integrated hetero-structures for sensing applications.
- Advances and challenges of sodium ion batteries as post lithium ion batteries
- Recent Advances and Prospects of Cathode Materials for Sodium‐Ion Batteries
- Nickel Hexacyanoferrate Nanoparticles as a Low Cost Cathode Material for Lithium-Ion Batteries
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