Neighboring Carbon Defects Enhanced Molecular Oxygen Activation of Cobalt Single Atom Catalysts Toward Efficient Aerobic Alcohols Oxidation

X Xiaoli Luo W Weiqin Wei (Beijing National Laboratory for Molecular Engineering, New Cornerstone Science Laboratory, College of Chemistry and Molecular Engineering) Y Yingzhuang Xu (Hebei University of Science and Technology, School of Sciences Shijiazhuang Hebei 050018 P.R. China) D Di Liu Z Zhen Wei J Junxiao Liu (Engineering Research Center of Photoenergy Utilization for Pollution Control and Carbon Reduction, Ministry of Education, College of Chemistry Central China Normal University Wuhan 430079 P.R. China) Z Zhipeng Li (Beijing Huairou Laboratory) L Liang Wang S Shuxin Ouyang (College of Chemistry) H Hong Yuan (Clinical Laboratory Center, Central Hospital of Dalian University of Technology) Z Zhen Liu T Tierui Zhang (Key Laboratory of Photochemical Conversion and Optoelectronic Materials, Technical Institute of Physics and Chemistry)

Abstract

Abstract The effective adsorption and activation of molecular oxygen (O 2 ) is crucial for aerobic alcohol oxidation; however, flexibly modulating the electronic structure of catalysts to improve the capability remains challenging. Herein, the concentration of carbon defects surrounding the nitrogen‐coordinated cobalt (Co) single atoms on candle soot is controlled just through adjusting the amount of polyethyleneimine which chemically decorates the surface of candle soot to anchor Co ions. The concentration increase of carbon defects boosts the aerobic alcohol oxidation over the Co single‐atom catalyst as well as ruthenium single‐atom catalyst. Moreover, a series of alcohols, including those with sensitive groups, reach an outstanding yield. Significantly, the calculations and experiments verify that the carbon defects lead to the rearrangement of d‐orbitals of Co atom and an elevation in the spin states of d yz and orbitals. Furthermore, compared with low‐spin Co atom, the stronger electron‐transfer interaction between high‐spin Co atom and O 2 enhances the adsorption and activation of O 2 and the generation of more superoxide radicals to promote alcohol oxidation. Our findings provide a new way for developing advanced single‐atom catalysts for sustainable aerobic alcohol oxidation via manipulating the spin configurations of single atoms.

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 (12)

X

Xiaoli Luo

W

Weiqin Wei

Beijing National Laboratory for Molecular Engineering, New Cornerstone Science Laboratory, College of Chemistry and Molecular Engineering

Y

Yingzhuang Xu

Hebei University of Science and Technology, School of Sciences Shijiazhuang Hebei 050018 P.R. China

D

Di Liu

Z

Zhen Wei

J

Junxiao Liu

Engineering Research Center of Photoenergy Utilization for Pollution Control and Carbon Reduction, Ministry of Education, College of Chemistry Central China Normal University Wuhan 430079 P.R. China

Z

Zhipeng Li

Beijing Huairou Laboratory

L

Liang Wang

S

Shuxin Ouyang

College of Chemistry

H

Hong Yuan

Clinical Laboratory Center, Central Hospital of Dalian University of Technology

Z

Zhen Liu

T

Tierui Zhang

Key Laboratory of Photochemical Conversion and Optoelectronic Materials, Technical Institute of Physics and Chemistry