Electrocatalytic Alcohol Oxidation to Aldehyde Through Direct Dehydrogenation Mechanism Using a High‐Performance Pt/Co <sub>3</sub> O <sub>4</sub> Catalyst

K Kai Shi (State Key Laboratory of Animal Biodiversity Conservation and Integrated Pest Management, Institute of Zoology, Chinese Academy of Sciences) Y Yuwei Ren (Shanghai Key Laboratory of Green Chemistry and Chemical Processes, State Key Laboratory of Petroleum Molecular & Process Engineering, ECNU Engineering Center for Sustainable Carbon, School of Chemistry and Molecular Engineering) B Bo Zhou L Lisong Chen (State Key Laboratory of Petroleum Molecular and Process Engineering, Shanghai Key Laboratory of Green Chemistry and Chemical Processes, ECNU Engineering Center for Sustainable Carbon, School of Chemistry and Molecular Engineering, East China Normal University, North Zhongshan Road 3663, Shanghai 200062, P. R. China) J Jianlin Shi (State Key Laboratory of High Performance Ceramics, Shanghai Institute of Ceramics)

Abstract

Abstract The electrocatalytic upgrading of low‐value carbon sources has been widely regarded as a green approach for synthesizing diverse chemicals and promising route to attain carbon neutrality goals. However, according to the prevailing reactive oxygen species‐mediated mechanism (ROSMM), these reactions suffer from harsh reaction conditions (strong basic electrolyte) and high energy costs (high reaction potential, especially under neutral conditions). Here, a novel electrochemical direct dehydrogenation mechanism (DDM) has been proposed. As proof‐of‐the‐concept, Pt/Co 3 O 4 /CC catalyst has been developed to accelerate the dehydrogenation reaction for efficient upgrading of ethylene glycol to glycolaldehyde dimer. Impressively, an ultralow potential of 0.4 V versus the reversible hydrogen electrode (RHE) at a current density of 3.7 mA cm −2 , a Faradaic efficiency of ∼100.0%, a selectivity of 99.0% and an extra‐high productivity of 204.9 µmol h −1 cm −2 in neutral electrolyte have been obtained, which are among the highest of the state‐of‐the‐art catalysts ever reported. Various value‐added aldehydes can be obtained by similar approach. The proposed direct dehydrogenation mechanism offers novel perspectives for electrocatalyst design, reaction pathway modulation, and energy consumption reduction in the syntheses of high‐value chemicals by electrocatalytic upgrading reactions.

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 (5)

K

Kai Shi

State Key Laboratory of Animal Biodiversity Conservation and Integrated Pest Management, Institute of Zoology, Chinese Academy of Sciences

Y

Yuwei Ren

Shanghai Key Laboratory of Green Chemistry and Chemical Processes, State Key Laboratory of Petroleum Molecular & Process Engineering, ECNU Engineering Center for Sustainable Carbon, School of Chemistry and Molecular Engineering

B

Bo Zhou

L

Lisong Chen

State Key Laboratory of Petroleum Molecular and Process Engineering, Shanghai Key Laboratory of Green Chemistry and Chemical Processes, ECNU Engineering Center for Sustainable Carbon, School of Chemistry and Molecular Engineering, East China Normal University, North Zhongshan Road 3663, Shanghai 200062, P. R. China

J

Jianlin Shi

State Key Laboratory of High Performance Ceramics, Shanghai Institute of Ceramics