Abstract
Aqueous Zn/MnO2 batteries have garnered significant interests owing to their abundance, high theoretical specific capacity, safety, and low cost. However, large-scale application of these systems is limited by the incomplete understanding of the MnO2 reaction chemistry. The different crystal lattice structures among MnO2 polymorphs contribute to the variations in reported reaction mechanisms. Among them, ε-MnO2 polymorph, the dominant phase in electrolytic manganese dioxide (EMD), is notably observed during the charge cycles of aqueous Zn/MnO2 batteries. In this work, we investigate the electrochemical behavior of an ε-MnO2 cathode synthesized via electrodeposition from a ZnSO4 and MnSO4 electrolyte, onto a 3-dimensional carbon cloth substrate. Proton intercalation emerges as the dominant charge storage mechanism, critically enabling the reversibility of ε-MnO2 during cycling, as revealed by operando synchrotron X-ray diffraction and X-ray absorption spectroscopy. Additionally, a proton-coupled dissolution/redeposition pathway operates alongside minor Zn2+ intercalation, as quantified by Rietveld refinement. Morphological and chemical heterogeneities are studied by transmission X-ray microscopy further validates this reaction mechanism. These mechanistic insights provide the foundation for rationally designing Zn/MnO2 batteries with optimized proton dynamics and charge transfer, advancing these systems as a viable solution for safe, cost-effective grid-scale energy storage.
| Original language | English |
|---|---|
| Pages (from-to) | 26078-26094 |
| Number of pages | 17 |
| Journal | ACS Applied Materials and Interfaces |
| Volume | 18 |
| Issue number | 18 |
| DOIs | |
| State | Published - May 13 2026 |
Keywords
- X-ray absorption spectroscopy
- aqueous electrolyte
- dissolution-redeposition
- electrolytic manganese dioxide (EMD)
- operando X-ray diffraction
- proton intercalation
- transmission X-ray microscopy
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