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Interlayer expanded magnesium vanadium bronze for high capacity stable aqueous zinc batteries and method for proton contribution calculation
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- Title
- Interlayer expanded magnesium vanadium bronze for high capacity stable aqueous zinc batteries and method for proton contribution calculation
- Issued Date
- 2024-12
- Citation
- Kim, Hyojeong J. (2024-12). Interlayer expanded magnesium vanadium bronze for high capacity stable aqueous zinc batteries and method for proton contribution calculation. Journal of Power Sources, 624. doi: 10.1016/j.jpowsour.2024.235602
- Type
- Article
- Author Keywords
- MgV6O16 ; Magnesium vanadium bronze ; 6H2O ; Zinc batteries ; Multivalent-ion batteries ; Aqueous electrolyte
- Keywords
- ION BATTERY ; ZN-ION ; CATHODE MATERIAL ; INTERCALATION ; STORAGE ; CHEMISTRY ; VANADATE ; STATES ; LITHIUM
- ISSN
- 0378-7753
- Abstract
-
Magnesium vanadium bronze, MgV6O16·6H2O, is demonstrated as a cathode material for aqueous zinc batteries. Its remarkable electrochemical performance is attributed to the hydrated magnesium pillar layer, which enhances zinc ion diffusion into the structure, yielding a high initial discharge capacity of 298 mAh g−1 and capacity retention above 97 % after 300 cycles. Zinc ions and protons are co-intercalated into the MgV6O16·6H2O structure, while zinc hydroxide sulfate forms on the surface during the discharge process. Ex-situ X-ray diffraction results and elemental analyses confirm the zinc and proton co-intercalation reaction within the MgV6O16·6H2O structure during cycling, providing detailed insights into the electrochemical mechanisms. These findings demonstrate the potential of MgV6O16·6H2O as a high-energy cathode material for aqueous zinc batteries and offer a comprehensive understanding of the zinc ion and proton co-intercalation mechanism in the MgV6O16·6H2O structure. © 2024 Elsevier B.V.
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- Publisher
- Elsevier
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