pH‐Dependent Urea Electrooxidation: From Mechanism to Catalysts and Applications

J Jia Wang M Mingyu Sun (National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng China) X Xiayan Zhang J Jialu Liu (National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng China) J Jinhai He (National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng 475004 China) W Wanmiao Ge (National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng 475004 China) S Shengwei Kong (National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng China) G Guoqing Zhang M Mai Gao (Beijing National Laboratory for Condensed Matter Physics Institute of Physics Chinese Academy of Science Beijing China) Z Zixu Sun (Key Lab for Special Functional Materials of Ministry of Education School of Nanoscience and Materials Engineering Henan University Kaifeng China) X Xinjian Shi (National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng China)

Abstract

Abstract The urea oxidation reaction (UOR) serves as a pivotal process for sustainable wastewater remediation and renewable energy conversion, yet its practical implementation faces pH‐dependent challenges that demand systematic understanding. This review comprehensively examines UOR mechanisms across alkaline, neutral, and acidic electrolytes, elucidating fundamental correlations between pH environments, catalytic activity, and reaction pathways. While alkaline media enhance kinetics via adsorbate evolution mechanisms, they often induce catalyst structural reconstruction that undermines stability; conversely, neutral and acidic media suffer from kinetic limitations due to inefficient proton‐coupled electron transfer processes. Based on these insights, this review outlines several key optimization strategies for catalyst development, tailored to each pH environment, and explores the potential for scaling up alkaline UOR for energy‐related applications. Finally, several critical future research directions that provide a roadmap for overcoming existing limitations and advancing UOR toward practical applications are proposed, which can serve as a timely framework for future developments in pH‐tailored UOR systems of both environmental and energy sectors.

Article Details

Volume / Issue Vol. 38, Issue 4
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

J

Jia Wang

M

Mingyu Sun

National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng China

X

Xiayan Zhang

J

Jialu Liu

National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng China

J

Jinhai He

National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng 475004 China

W

Wanmiao Ge

National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng 475004 China

S

Shengwei Kong

National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng China

G

Guoqing Zhang

M

Mai Gao

Beijing National Laboratory for Condensed Matter Physics Institute of Physics Chinese Academy of Science Beijing China

Z

Zixu Sun

Key Lab for Special Functional Materials of Ministry of Education School of Nanoscience and Materials Engineering Henan University Kaifeng China

X

Xinjian Shi

National & Local Joint Engineering Research Center for Applied Technology of Hybrid Nanomaterials School of Nanoscience and Materials Engineering Henan University Kaifeng China