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Water-Activated VOPO 4 for Magnesium Ion Batteries.
- Source :
-
Nano letters [Nano Lett] 2018 Oct 10; Vol. 18 (10), pp. 6441-6448. Date of Electronic Publication: 2018 Sep 11. - Publication Year :
- 2018
-
Abstract
- Rechargeable Mg batteries, using high capacity and dendrite-free Mg metal anodes, are promising energy storage devices for large scale smart grid due to low cost and high safety. However, the performance of Mg batteries is still plagued by the slow reaction kinetics of their cathode materials. Recent discoveries demonstrate that water in cathode can significantly enhance the Mg-ion diffusion in cathode by an unknown mechanism. Here, we propose the water-activated layered-structure VOPO <subscript>4</subscript> as a novel cathode material and examine the impact of water in electrode or organic electrolyte on the thermodynamics and kinetics of Mg-ion intercalation/deintercalation in cathodes. Electrochemical measurements verify that water in both VOPO <subscript>4</subscript> lattice and organic electrolyte can largely activate VOPO <subscript>4</subscript> cathode. Thermodynamic analysis demonstrates that the water in the electrolyte will equilibrate with the structural water in VOPO <subscript>4</subscript> lattice, and the water activity in the electrolyte alerts the mechanism and kinetics for electrochemical Mg-ion intercalation in VOPO <subscript>4</subscript> . Theoretical calculations and experimental results demonstrate that water reduces both the solid-state diffusion barrier in the VOPO <subscript>4</subscript> electrode and the desolvation penalty at the interface. To achieve fast reaction kinetics, the water activity in the electrolyte should be larger than 10 <superscript>-2</superscript> . The proposed activation mechanism provides guidance for screening and designing novel chemistry for high performance multivalent-ion batteries.
Details
- Language :
- English
- ISSN :
- 1530-6992
- Volume :
- 18
- Issue :
- 10
- Database :
- MEDLINE
- Journal :
- Nano letters
- Publication Type :
- Academic Journal
- Accession number :
- 30192559
- Full Text :
- https://doi.org/10.1021/acs.nanolett.8b02854