From Corrosion to Creation: Interfacial De‐Electronation Drives Hydrogenation‐Energy Symbiosis

Y Yueqing Wang X Xueying Cao (Key Laboratory for Colloid and Interface Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, P. R. China) C Chengdong Yang (Key Laboratory for Colloid and Interface Chemistry Ministry of Education, School of Chemistry and Chemical Engineering) W Wenwen Cai (Shandong University , , ,) X Xinxin Shu Y Yuhan Li J Jing Zhu (Hefei National Research Center for Physical Sciences at the Microscale, CAS Key Laboratory of Strongly-Coupled Quantum Matter Physics, Key Laboratory of Surface and Interface Chemistry and Energy Catalysis of Anhui Higher Education Institutes, Department of Chemical Physics) J Jizhen Ma (Key Laboratory for Colloid and Interface Chemistry (Ministry of Education), School of Chemistry and Chemical Engineering) J Jintao Zhang (Shandong University , , ,)

Abstract

Abstract Metal corrosion, conventionally perceived as a destructive phenomenon driven by de‐electronation, imposes significant economic burdens and safety hazards. To repurpose corrosion into a valuable resource, we demonstrate a macroscopic corrosion battery concept that harnesses galvanic corrosion to drive the synthesis of metal–organic frameworks (MOFs), high‐value chemicals, and energy generation, challenging conventional corrosion mitigation paradigms. By spatially segregating the corrosion process, the system couples anodic metal de‐electronation with MOF deposition while integrating diverse cathodic reactions, including the hydrogen evolution reaction, oxygen reduction, electrocatalytic hydrogenation, and hydrogen peroxide reduction with remarkable accelerated kinetics, thereby achieving universal MOFs and chemical synthesis with high electron and atom utilization efficiencies. The prototype system demonstrates concurrent production of p ‐aminophenol (14.3 mg cm −2 h −1 ) and zinc oxalate (86.9 mg cm −2 h −1 ) while generating 34.2 mW cm −2 of electrical power. Techno‐economic analysis establishes the inaugural empirical validation of economic feasibility for corrosion‐driven energy‐matter symbiosis, highlighting its high gross profit. Transcending conventional corrosion engineering boundaries for inorganic synthesis, this methodology mechanistically deciphers MOF growth kinetics and advanced system design. By broadening the scope of corrosion utilization, this work enables a paradigm shift from damage mitigation to value creation, providing a blueprint for sustainable chemical‐energy ecosystems.

Article Details

Volume / Issue Vol. 64, Issue 35
Published August 25, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

Y

Yueqing Wang

X

Xueying Cao

Key Laboratory for Colloid and Interface Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, Shandong University, Jinan 250100, P. R. China

C

Chengdong Yang

Key Laboratory for Colloid and Interface Chemistry Ministry of Education, School of Chemistry and Chemical Engineering

W

Wenwen Cai

Shandong University , , ,

X

Xinxin Shu

Y

Yuhan Li

J

Jing Zhu

Hefei National Research Center for Physical Sciences at the Microscale, CAS Key Laboratory of Strongly-Coupled Quantum Matter Physics, Key Laboratory of Surface and Interface Chemistry and Energy Catalysis of Anhui Higher Education Institutes, Department of Chemical Physics

J

Jizhen Ma

Key Laboratory for Colloid and Interface Chemistry (Ministry of Education), School of Chemistry and Chemical Engineering

J

Jintao Zhang

Shandong University , , ,