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Forging a Conductive, Hydrophobic, and Self-Adaptive Trifunctional Interphase on Mn2O3 Cathodes for Ultrastable,
Qi Zhou1, Yan Shi2, Xiang Luo1
1School of Materials Science and Engineering, Beihang University, Beijing 100191, China.
Abstract:
Manganese oxide cathodes are promising candidates for aqueous batteries owing to their high operating voltage and large capacity. However, they suffer from severe Mn3+ disproportionation and Mn2+ dissolution in acidic aqueous batteries, hindering their practical applications. Herein, we construct an in situ trifunctional (conductive, hydrophobic, self-adaptive) interphase using PDMS-DE@PANI (epoxypropoxypropyl-terminated polydimethylsiloxane@polyaniline) core-shell nanocapsules for encapsulating Mn2O3. The electrochemically driven release of the liquid PDMS-DE core, synergizing with the PANI shell, effectively suppresses Mn2+ dissolution while ensuring rapid electron/ion transfer. Consequently, the PD-Mn2O3 cathode delivers a record-high capacity of 340 mAh g-1 at 0.2 A g-1 and retains 201 mAh g-1 (92% capacity retention) after 800 cycles at 1 A g-1. Paired with a HATN anode, the full proton battery achieves an exceptional energy density of 140 Wh kg-1 with 80% capacity retention over 800 cycles. This dynamic interphase engineering provides a robust strategy for developing high-energy, ultrastable aqueous proton batteries.

