A Universal pH Regulation Principle for HER Suppression in Aqueous Metal Batteries

W Weiteng Dai (Key Laboratory of Physics and Technology for Advanced Batteries (Ministry of Education) State Key Laboratory of High‐pressure and Superhard Materials College of Physics Jilin University Changchun 130012 P.R. China) W Wenqiang Lu (Key Laboratory of Physics and Technology for Advanced Batteries (Ministry of Education) State Key Laboratory of High‐pressure and Superhard Materials College of Physics Jilin University Changchun 130012 P.R. China) S Shibo Zhao H Haocheng liu D Dong Zhang (School of Physical Science and Technology & Shanghai Key Laboratory of High-Resolution Electron Microscopy) H Heng Jiang D Deping Wang H Hong Jin Fan (School of Physical and Mathematical Sciences) F Fei Du (Key Laboratory of Physics and Technology for Advanced Batteries (ministry of Education); State Key Laboratory of Superhard Materials, College of Physics)

Abstract

Abstract Hydrogen evolution reactions (HERs) pose a formidable challenge to rechargeable aqueous metal batteries (AMBs), causing flammable gas accumulation and interfacial instability. While conventional buffer‐based electrolytes partially mitigate HERs, there lacks a rational pH regulation principle. Herein, we propose a universal pH regulation principle rooted in the equilibrium between soluble metal cations and their hydroxide precipitates, governed by the solubility product ( K sp ). Moreover, an analytical platform is designed to quantify the pH‐dependent HER kinetics and distinguish the corrosive and catalytic H 2 production by decoupling the evolution of mass, hydrogen gas, and charge. Under this platform, we can identify the optimized pH values (herein, 5.40 in 1 M Zn‐based electrolytes) by adding a selective buffer to synchronously suppress both corrosive and catalytic‐HERs, leading to evident enhancement of cycling stability. The universality of this principle is also demonstrated in other AMB systems with more serious HER, such as Mn and Mg metal batteries. A more than eightfold increase in cycling lifespan is achieved with tailored buffers in both Mn and Mg AMBs. This work highlights the essential role of pH in aqueous electrolytes and also establishes a thermodynamic foundation for pH optimization and HER mitigation.

Article Details

Volume / Issue Vol. 64, Issue 51
Published December 15, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

W

Weiteng Dai

Key Laboratory of Physics and Technology for Advanced Batteries (Ministry of Education) State Key Laboratory of High‐pressure and Superhard Materials College of Physics Jilin University Changchun 130012 P.R. China

W

Wenqiang Lu

Key Laboratory of Physics and Technology for Advanced Batteries (Ministry of Education) State Key Laboratory of High‐pressure and Superhard Materials College of Physics Jilin University Changchun 130012 P.R. China

S

Shibo Zhao

H

Haocheng liu

D

Dong Zhang

School of Physical Science and Technology & Shanghai Key Laboratory of High-Resolution Electron Microscopy

H

Heng Jiang

D

Deping Wang

H

Hong Jin Fan

School of Physical and Mathematical Sciences

F

Fei Du

Key Laboratory of Physics and Technology for Advanced Batteries (ministry of Education); State Key Laboratory of Superhard Materials, College of Physics