Water Dissociation: A New Dimension for Understanding and Designing Aqueous Electrocatalysts

J Jiaxin Guo R Ruguang Wang J Jisi Li (Key Laboratory for Advanced Ceramics and Machining Technology of Ministry of Education Tianjin Key Laboratory of Composite and Functional Materials School of Materials Science and Engineering Tianjin University Tianjin 300072 China) R Ruize Ma (State Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science) Q Quanlu Wang (Key Laboratory for Advanced Ceramics and Machining Technology of Ministry of Education Tianjin Key Laboratory of Composite and Functional Materials School of Materials Science and Engineering Tianjin University Tianjin 300072 China) Z Zheng Lv (State Key Laboratory of Advanced Waterproof Materials, School of Materials Science and Engineering) H Hui Jin W Wei Wei L Lili Han (State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter) T Tao Ling

Abstract

ABSTRACT Water dissociation plays a central role in key electrocatalytic reactions—including hydrogen evolution, oxygen evolution, CO 2 reduction, and nitrogen reduction—by serving as the essential proton or hydroxyl source that fundamentally governs reaction pathways and product selectivity. However, its mechanism has long been oversimplified as an isolated chemical step occurring at a single active “dissociation” site, neglecting the profound influence of the interfacial microenvironment between catalyst and electrolyte. Recent advances reveal that water dissociation is dynamically coupled with, and actively reshapes, the interfacial microenvironment, thereby enabling performance breakthroughs across diverse reactions. This review systematically analyzes the multiscale mechanisms underlying this coupling, surveys advanced characterization techniques for probing dynamic interfaces, and discusses rational strategies—including catalyst engineering, molecular modification, and electrolyte design—for actively tuning the microenvironment to accelerate water dissociation and direct reaction pathways. This interfacial‐system perspective offers a transformative framework for designing next‐generation electrocatalysts, with broad implications for sustainable energy technologies such as water electrolyzers, fuel cells, and carbon/nitrogen reduction systems.

Article Details

Volume / Issue Vol. 1, Issue 1
Published March 26, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

J

Jiaxin Guo

R

Ruguang Wang

J

Jisi Li

Key Laboratory for Advanced Ceramics and Machining Technology of Ministry of Education Tianjin Key Laboratory of Composite and Functional Materials School of Materials Science and Engineering Tianjin University Tianjin 300072 China

R

Ruize Ma

State Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science

Q

Quanlu Wang

Key Laboratory for Advanced Ceramics and Machining Technology of Ministry of Education Tianjin Key Laboratory of Composite and Functional Materials School of Materials Science and Engineering Tianjin University Tianjin 300072 China

Z

Zheng Lv

State Key Laboratory of Advanced Waterproof Materials, School of Materials Science and Engineering

H

Hui Jin

W

Wei Wei

L

Lili Han

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter

T

Tao Ling