Designing Proton‐Selective Pathway on MnO 2 Surface Toward Sustainable Protonation Electrochemistry

ABSTRACT Manganese dioxide (MnO 2 ), known for its low‐cost, high‐theoretical capacity, and environmental friendliness, has garnered great attention in developing mild aqueous Zn‐MnO 2 batteries (AZMBs). However, Mn 2+ dissolution severely compromises cycling stability and practical viability; moreover, the ambiguity of charge storage mechanisms (e.g., Zn 2+ vs. H + ) makes the direction of strategic engineering uncertain. Herein, via advanced electron microscopy, we show that the charge storage in MnO 2 is dominated by H + intercalation rather than Zn 2+ insertion. Inspired by this finding and by referring to the recipe of proton exchange membrane, we uniformly coat individual MnO 2 particles with a proton‐selective surface, that is, Nafion, which successfully suppresses Mn 2+ dissolution as an “ion filter” and simultaneously facilitates reversible H + insertion/extraction as a “proton channel”. Therefore, the MnO 2 @Nafion cathode exhibits an outstanding specific capacity (277 mAh g −1 after 100 cycles at 0.2 A g −1 ) and remarkable cycling stability, retaining 91.7% of its capacity after 3000 cycles at 2 A g −1 . These results outperform previously reported manganese‐based cathodes, demonstrating the potential of MnO 2 @Nafion as a high‐performance and durable cathode material for AZMBs. This work rationalizes the rising endeavors in the mechanism understanding of MnO 2 ‐based aqueous battery systems and provides new insights for developing more sustainable aqueous battery materials.

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Journal
Angewandte Chemie
Published
2026-08-24
DOI
https://doi.org/10.1002/ange.4662687
Primary Topic
Advanced battery technologies research
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article
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article

Designing Proton‐Selective Pathway on MnO 2 Surface Toward Sustainable Protonation Electrochemistry

Yifei Yuan, Kun He, Xiaobin He, Rui Zhong et al.
Angewandte Chemie
Advanced battery technologies research
article

Designing Proton‐Selective Pathway on MnO 2 Surface Toward Sustainable Protonation Electrochemistry

Yifei Yuan, Kun He, Xiaobin He, Rui Zhong, Xianzhe Han, Jun Lü, Wenjun Song, Ming Zhao, Guixing Mo, Jingang Wu, Jiali Xiang, Yun Li
article en

Abstract

ABSTRACT Manganese dioxide (MnO 2 ), known for its low‐cost, high‐theoretical capacity, and environmental friendliness, has garnered great attention in developing mild aqueous Zn‐MnO 2 batteries (AZMBs). However, Mn 2+ dissolution severely compromises cycling stability and practical viability; moreover, the ambiguity of charge storage mechanisms (e.g., Zn 2+ vs. H + ) makes the direction of strategic engineering uncertain. Herein, via advanced electron microscopy, we show that the charge storage in MnO 2 is dominated by H + intercalation rather than Zn 2+ insertion. Inspired by this finding and by referring to the recipe of proton exchange membrane, we uniformly coat individual MnO 2 particles with a proton‐selective surface, that is, Nafion, which successfully suppresses Mn 2+ dissolution as an “ion filter” and simultaneously facilitates reversible H + insertion/extraction as a “proton channel”. Therefore, the MnO 2 @Nafion cathode exhibits an outstanding specific capacity (277 mAh g −1 after 100 cycles at 0.2 A g −1 ) and remarkable cycling stability, retaining 91.7% of its capacity after 3000 cycles at 2 A g −1 . These results outperform previously reported manganese‐based cathodes, demonstrating the potential of MnO 2 @Nafion as a high‐performance and durable cathode material for AZMBs. This work rationalizes the rising endeavors in the mechanism understanding of MnO 2 ‐based aqueous battery systems and provides new insights for developing more sustainable aqueous battery materials.

Angewandte Chemie
Wenzhou University (CN), Zhejiang University (CN)
Openalex Percentile: Top 19%
Advanced battery technologies research
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