Decoding MnO2 redox chemistry from mechanistic ambiguity to design principles for aqueous Zn-ion batteries

Y Yuan Shang S Sankhadip Saha (School of Chemical Engineering) H Haotian Wen Q Qihui Zhang X Xinyuan Wu (State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica) B Bram Hoex (School of Photovoltaic and Renewable Energy Engineering, University of New South Wales, Tyree Energy Technologies Building, 229 Anzac Parade, Kensington, NSW 2052, Australia) M Mingyue Wang (Department of Chemistry, Mechanical Engineering and School of Biomedical Sciences) N Nana Wang T Tongjun Luo S Sougat Purohit G Gopalakrishnan Sai Gautam W Wesley M. Dose L Lars Thomsen (Australian Synchrotron, ANSTO, 800 Blackburn Rd, Clayton, VIC 3168, Australia) S Shery Chang P Priyank Kumar D Dipan Kundu

Abstract

Abstract Manganese dioxide (MnO 2 ) is a leading positive electrode candidate for aqueous zinc-ion batteries, combining safety, high voltage, low cost, and sustainability for grid-scale storage. However, its practical development remains restricted by poor reversibility, rooted in an unresolved mechanistic debate spanning over a decade. Here, we combine operando characterizations, multimodal spectroscopic analyses, and theory to establish a unified picture: proton-primed MnO 2 dissolution and subsequent redeposition as nanocrystalline and disordered MnO x nanosheets, coexisting with reversible proton intercalation in parent MnO 2 and predominantly in deposited MnO x , forming a dual redox mechanism. pH-driven insulating byproduct precipitation emerges as a significant kinetic barrier that limits deep dissolution and capacity utilization. Guided by these insights, we introduce surface activation and architectural design strategies toward mitigating kinetic barriers, enabling enhanced capacity and stability in both Swagelok and pouch-type cells. By reconciling mechanistic ambiguity and translating it into actionable design principles, this work demonstrates a framework for developing durable Mn-based positive electrodes for sustainable energy storage.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 11, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (16)

Y

Yuan Shang

S

Sankhadip Saha

School of Chemical Engineering

H

Haotian Wen

Q

Qihui Zhang

X

Xinyuan Wu

State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica

B

Bram Hoex

School of Photovoltaic and Renewable Energy Engineering, University of New South Wales, Tyree Energy Technologies Building, 229 Anzac Parade, Kensington, NSW 2052, Australia

M

Mingyue Wang

Department of Chemistry, Mechanical Engineering and School of Biomedical Sciences

N

Nana Wang

T

Tongjun Luo

S

Sougat Purohit

G

Gopalakrishnan Sai Gautam

W

Wesley M. Dose

L

Lars Thomsen

Australian Synchrotron, ANSTO, 800 Blackburn Rd, Clayton, VIC 3168, Australia

S

Shery Chang

P

Priyank Kumar

D

Dipan Kundu