Revealing Hybrid Mn 2+ /H + Storage in Copper Vanadate Cathodes for Aqueous Manganese Batteries

ABSTRACT Aqueous manganese batteries are emerging as safe and low‐cost energy‐storage systems, yet the fundamental charge‐storage chemistry related to Mn ion transport remains undeveloped enough and poorly understood. Here, we report monoclinic Cu 0.3 V 2 O 5 as a cathode that reveals hybrid Mn and proton storage in aqueous manganese batteries. In saturated MnCl 2 electrolyte, Cu 0.3 V 2 O 5 delivers a high reversible capacity of 330.5 mAh/g and retains 70.4% capacity after 1500 cycles. Combined spectroscopic analysis, Fourier electron‐density mapping, ICP–OES, and SoftBV calculations demonstrated that Mn mainly forms Mn(OH) 2 surface by‐products, while partial Mn intercalation is verified by Fourier electron‐density mapping. In contrast, electrolyte‐derived protons dominate reversible lattice insertion and act as the primary charge carriers. The substantially lower migration barrier of protons compared with Mn ions further confirms proton‐dominated transport within the host structure. When paired with Mn metal anodes, full cells exhibited an average operating voltage higher by 0.43 V than aqueous Zn batteries comprising similar cathodes and Zn metal anodes. This work clarifies the hybrid Mn ions and protons chemistry of aqueous manganese batteries and provides mechanistic insight for the design of next‐generation multivalent aqueous energy‐storage systems.

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Small
Published
2026-08-26
DOI
https://doi.org/10.1002/smll.75460
Primary Topic
Advanced battery technologies research
Type
article
Field-Weighted Citation Impact
0.00

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article

Revealing Hybrid Mn 2+ /H + Storage in Copper Vanadate Cathodes for Aqueous Manganese Batteries

Hyeongseok Lee, Munseok S. Chae, Doron Aurbach, Jangwook Pyun et al.
Small
Advanced battery technologies research
article

Revealing Hybrid Mn 2+ /H + Storage in Copper Vanadate Cathodes for Aqueous Manganese Batteries

Hyeongseok Lee, Munseok S. Chae, Doron Aurbach, Jangwook Pyun, Hyeju Kwon
article en

Abstract

ABSTRACT Aqueous manganese batteries are emerging as safe and low‐cost energy‐storage systems, yet the fundamental charge‐storage chemistry related to Mn ion transport remains undeveloped enough and poorly understood. Here, we report monoclinic Cu 0.3 V 2 O 5 as a cathode that reveals hybrid Mn and proton storage in aqueous manganese batteries. In saturated MnCl 2 electrolyte, Cu 0.3 V 2 O 5 delivers a high reversible capacity of 330.5 mAh/g and retains 70.4% capacity after 1500 cycles. Combined spectroscopic analysis, Fourier electron‐density mapping, ICP–OES, and SoftBV calculations demonstrated that Mn mainly forms Mn(OH) 2 surface by‐products, while partial Mn intercalation is verified by Fourier electron‐density mapping. In contrast, electrolyte‐derived protons dominate reversible lattice insertion and act as the primary charge carriers. The substantially lower migration barrier of protons compared with Mn ions further confirms proton‐dominated transport within the host structure. When paired with Mn metal anodes, full cells exhibited an average operating voltage higher by 0.43 V than aqueous Zn batteries comprising similar cathodes and Zn metal anodes. This work clarifies the hybrid Mn ions and protons chemistry of aqueous manganese batteries and provides mechanistic insight for the design of next‐generation multivalent aqueous energy‐storage systems.

Small
Bar-Ilan University (IL), Pukyong National University (KR)
National Research Foundation of Korea
Affordable and clean energy
Openalex Percentile: Top 19%
Advanced battery technologies research
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