Non‐Precious Metal Catalysts with Gradient Oxidative Dual Sites Boost Bimolecular Activation for Catalytic Oxidation Reactions

Y Yufei Wang (Chemistry Division) T Tianwei Lan L Lupeng Han (Shanghai University , , ,) E Evangelina Pensa (Nanoinstitute Munich, Faculty of Physics) Y Yongjie Shen (Institute for Chemical Reaction Design and Discovery (WPI-ICReDD)) X Xingchi Li (International Joint Laboratory of Catalytic Chemistry, State Key Laboratory of Advanced Special Steel, Innovation Institute of Carbon Neutrality, Department of Chemistry, College of Sciences) Z Zixiang Xu (International Joint Laboratory of Catalytic Chemistry State Key Laboratory of Advanced Special Steel Innovation Institute of Carbon Neutrality Department of Chemistry College of Sciences Shanghai University Shanghai 200444 P.R. China) X Xin Chen M Mengxue Wang X Xiaoya Xue (Innovation Institute of Carbon Neutrality International Joint Laboratory of Catalytic Chemistry College of Sciences State Key Laboratory of Materials for Advanced Nuclear Energy Shanghai University Shanghai China) Y Yanqing Li M Ming Xie (Department of Chemical Engineering) E Emiliano Cortés (Ludwig-Maximilians-Universität (LMU) , , ,) D Dengsong Zhang (Shanghai University , , ,)

Abstract

Abstract Catalytic oxidation emerges as a highly promising and cost‐effective approach for eliminating gaseous pollutants, greenhouse gases, and volatile organic compounds (VOCs) from industrial exhaust streams. However, achieving the simultaneous activation of O 2 and substrate molecules at low temperatures using non‐precious metal catalysts remains a significant challenge. In this study, we introduce gradient oxidative Cu─O─Ti/Cu─O─Cu dual sites that enhance bimolecular activation for catalytic oxidation reactions. The catalyst, Ti‐doped CuO, is synthesized on a TiO 2 support through the immobilization of Cu 2⁺ on NO 3 ⁻‐grafted TiO 2 , followed by thermal treatment. The resulting gradient oxidative Cu─O─Ti/Cu─O─Cu sites exhibit exceptional catalytic oxidation activity for NH 3 and various VOCs at low temperatures, matching the performance of precious metal‐based catalysts. Notably, during NH₃ oxidation, Cu─O─Ti sites enhance the activation of both O₂ and NH₃. HNO intermediates formed on Cu─O─Ti sites react with NH intermediates on neighboring Cu─O─Cu sites—producing N₂ and H₂O via an imide mechanism—which effectively lowers the reaction barrier for catalytic NH₃ oxidation. As such, dual sites in non‐precious metal catalysts show promising results for advancing future catalytic oxidation technologies.

Article Details

Volume / Issue Vol. 64, Issue 25
Published June 17, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

Y

Yufei Wang

Chemistry Division

T

Tianwei Lan

L

Lupeng Han

Shanghai University , , ,

E

Evangelina Pensa

Nanoinstitute Munich, Faculty of Physics

Y

Yongjie Shen

Institute for Chemical Reaction Design and Discovery (WPI-ICReDD)

X

Xingchi Li

International Joint Laboratory of Catalytic Chemistry, State Key Laboratory of Advanced Special Steel, Innovation Institute of Carbon Neutrality, Department of Chemistry, College of Sciences

Z

Zixiang Xu

International Joint Laboratory of Catalytic Chemistry State Key Laboratory of Advanced Special Steel Innovation Institute of Carbon Neutrality Department of Chemistry College of Sciences Shanghai University Shanghai 200444 P.R. China

X

Xin Chen

M

Mengxue Wang

X

Xiaoya Xue

Innovation Institute of Carbon Neutrality International Joint Laboratory of Catalytic Chemistry College of Sciences State Key Laboratory of Materials for Advanced Nuclear Energy Shanghai University Shanghai China

Y

Yanqing Li

M

Ming Xie

Department of Chemical Engineering

E

Emiliano Cortés

Ludwig-Maximilians-Universität (LMU) , , ,

D

Dengsong Zhang

Shanghai University , , ,