Long-duration aqueous manganese metal anode by hydrogel solvation regulation

The key challenge of implementing aqueous manganese (Mn) metal batteries is severe water-related parasitic reactions, including the hydrogen evolution reaction and Mn corrosion. These issues originate largely from the high reactivity of solvated water around manganese ions (Mn 2+ ). Herein, we design a hydrogel electrolyte that reconstitutes the Mn 2+ solvation structure and establishes a hydration-regulated ion-migration environment. The incorporated 18-crown-6 macrocycles on polymer chains bind strongly to Mn 2+ , reducing its hydration number from 5.51 to 1.39 and forming a water-repelling, polymer-guided conduction pathway. Dynamic measurements demonstrate uniform Mn deposition and suppressed detrimental gas evolution. Consequently, Mn plating/stripping in this hydrogel becomes highly reversible, achieving an average Coulombic efficiency of 95% over 350 cycles (Mn||Cu cells) and low polarization of ∼24 millivolts for over 1800 hours (Mn||Mn cells). Moreover, pouch cells paired with a silver vanadium oxide (AgVO) cathode (N/P ratio of 4.63) retain 95.3% of the initial capacities after 200 cycles. This work demonstrates an effective solvation-regulation strategy via hydrogel design for durable Mn anodes in aqueous batteries.

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Publication Details

Journal
Science Advances
Published
2026-09-25
DOI
https://doi.org/10.1126/sciadv.aeg1770
Primary Topic
Advanced battery technologies research
Type
article
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article

Long-duration aqueous manganese metal anode by hydrogel solvation regulation

Fei Du, Dong Zhang, Heng Jiang, Wenqiang Lu et al.
Science Advances
Advanced battery technologies research
article

Long-duration aqueous manganese metal anode by hydrogel solvation regulation

Fei Du, Dong Zhang, Heng Jiang, Wenqiang Lu, Xinyuan Zhang, Zhixuan Wei, Hongbao Zheng, Zhichao Hou, Nan Chen
article en

Abstract

The key challenge of implementing aqueous manganese (Mn) metal batteries is severe water-related parasitic reactions, including the hydrogen evolution reaction and Mn corrosion. These issues originate largely from the high reactivity of solvated water around manganese ions (Mn 2+ ). Herein, we design a hydrogel electrolyte that reconstitutes the Mn 2+ solvation structure and establishes a hydration-regulated ion-migration environment. The incorporated 18-crown-6 macrocycles on polymer chains bind strongly to Mn 2+ , reducing its hydration number from 5.51 to 1.39 and forming a water-repelling, polymer-guided conduction pathway. Dynamic measurements demonstrate uniform Mn deposition and suppressed detrimental gas evolution. Consequently, Mn plating/stripping in this hydrogel becomes highly reversible, achieving an average Coulombic efficiency of 95% over 350 cycles (Mn||Cu cells) and low polarization of ∼24 millivolts for over 1800 hours (Mn||Mn cells). Moreover, pouch cells paired with a silver vanadium oxide (AgVO) cathode (N/P ratio of 4.63) retain 95.3% of the initial capacities after 200 cycles. This work demonstrates an effective solvation-regulation strategy via hydrogel design for durable Mn anodes in aqueous batteries.

Science AdvancesVol. 12(39)
Nanyang Technological University (SG), Jilin University (CN), Harbin Institute of Technology (CN), State Key Laboratory of High Pressure and Superhard Materials (CN)
Openalex Percentile: Top 22%
Advanced battery technologies research
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Long-duration aqueous manganese metal anode by hydrogel solvation regulation — Fei Du, Dong Zhang, et al. · Science Advances (2026) | TGRS Research Map | TGRS