Abstract
Rechargeable aqueous zinc-ion batteries (AZIBs), despite their potential in storing large-scale sustainable energy, suffer from sluggish kinetics, poor conductivity, and vanadium dissolution, which impede the development of vanadium oxide cathodes. This study presents a Mo6+-doped ZnV2O4 (ZVO-X%Mo) cathode featuring a cross-interlocked nanosheet architecture. This design enhances Zn2+…V–O bonding through the cross-interlocked nanosheet structure and Mo6+ doping, suppresses vanadium dissolution, establishes efficient Zn2+ transport pathways, and simultaneously introduces abundant oxygen vacancies. The improved ionic/electronic conductivity and reduced Zn2+ diffusion barriers are validated through density functional theory calculations. The Zn‖Zn(CF3SO3)2‖ZVO-3 %Mo cell delivers 636 mAh.g−1 at 0.1 A.g−1 and retains 80.5 % capacity after 2000 cycles at 5 A.g−1, demonstrating exceptional electrochemical stability. By integrating metal cation doping with architectural engineering, this work proposes a synergistic strategy for high-performance AZIB cathodes, affirming their commercial viability for grid-scale energy storage.
| Original language | English |
|---|---|
| Article number | 139619 |
| Journal | Journal of Colloid and Interface Science |
| Volume | 706 |
| DOIs | |
| State | Published - 15 Mar 2026 |
Keywords
- Aqueous zinc-ion battery
- DFT calculation
- Mo incorporation
- Oxygen vacancies
- Vanadium-based cathode
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