Synergistic Rh <sub>1</sub> –Cu <sub>1</sub> Dual‐Atom‐Site Enhancing Performance of Ethane Low‐Temperature Oxidation via Auto‐Selective Oxygen Source From O <sub>2</sub> /H <sub>2</sub> O

B Bin Li S Siquan Feng (Dalian National Laboratory for Clean Energy) J Jiaqian Wang (State Key Laboratory of Silicon Materials, School of Materials Science and Engineering) X Xiangen Song (Dalian National Laboratory for Clean Energy) G Guifa Long (Dalian National Laboratory for Clean Energy) J Jiali Mu (Dalian National Laboratory for Clean Energy) Y Yue Zhang F Fangcen Liu (Dalian National Laboratory for Clean Energy Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian China) E Ende Huang (Dalian National Laboratory for Clean Energy) S Siyue Liu (Dalian National Laboratory for Clean Energy) F Fanfei Sun (Shanghai Synchrotron Radiation Facility, Shanghai Advanced Research Institute) W Wenrui Dong (State Key Laboratory of Molecular Reaction Dynamics) W Weiqing Zhang X Xueming Yang (State Key Laboratory of Chemical Reaction Dynamics and Dalian Coherent Light Source, Dalian Institute of Chemical Physics) D Dehui Deng (State Key Laboratory of Catalysis) Z Zhongkang Han (State Key Laboratory of Silicon and Advanced Semiconductor Materials and Center of Electron Microscopy, School of Materials Science and Engineering) L Li Yan Y Yunjie Ding (Dalian National Laboratory for Clean Energy)

Abstract

ABSTRACT The low‐temperature direct conversion of ethane is more appealing for the utilization of shale gas. Dual‐atom catalysts have attracted considerable attention due to their unique cooperative effects. Herein, we report a porous organic polymer‐supported Rh 1 –Cu 1 dual‐site catalyst (Rh 1 –Cu 1 @POPs‐PPh 3 ) for the selective oxidation of ethane to ethanol, acetaldehyde, and acetic acid with auto‐selective oxygen mechanism. The optimized Rh 1 –Cu 1 centers deliver a productivity of ca. 250 mol mol Rh −1 h −1 based on Rh with 65% acetaldehyde selectivity at 423 K, representing a four‐fold improvement over the single‐Rh‐site catalyst. Through isotopic labeling and in situ characterizations, we uncover an auto‐selective oxygen source mechanism in which dehydrogenated species of ethane with different grades possess self‐selectivity for the combined oxygen source. Oxygen species derived from O 2 activate ethane and subsequently couple with the ethyl fragment to produce ethanol. While OH radicals from H 2 O dissociation react with ethyl intermediates from ethane dehydrogenation to yield acetaldehyde. Concurrently, oxygen species recombine with reactive hydrogen species to regenerate new H 2 O, completing the catalytic oxidation cycle. The density functional theory (DFT) calculations reveal that the Rh–Cl–Cu configuration lowers the lowest unoccupied molecular orbital (LUMO) energy of Rh 1 , thereby strengthening adsorbate‐metal interactions, weakening the C─H bond, and facilitating its activation.

Article Details

Volume / Issue Vol. 65, Issue 11
Published March 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (18)

B

Bin Li

S

Siquan Feng

Dalian National Laboratory for Clean Energy

J

Jiaqian Wang

State Key Laboratory of Silicon Materials, School of Materials Science and Engineering

X

Xiangen Song

Dalian National Laboratory for Clean Energy

G

Guifa Long

Dalian National Laboratory for Clean Energy

J

Jiali Mu

Dalian National Laboratory for Clean Energy

Y

Yue Zhang

F

Fangcen Liu

Dalian National Laboratory for Clean Energy Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian China

E

Ende Huang

Dalian National Laboratory for Clean Energy

S

Siyue Liu

Dalian National Laboratory for Clean Energy

F

Fanfei Sun

Shanghai Synchrotron Radiation Facility, Shanghai Advanced Research Institute

W

Wenrui Dong

State Key Laboratory of Molecular Reaction Dynamics

W

Weiqing Zhang

X

Xueming Yang

State Key Laboratory of Chemical Reaction Dynamics and Dalian Coherent Light Source, Dalian Institute of Chemical Physics

D

Dehui Deng

State Key Laboratory of Catalysis

Z

Zhongkang Han

State Key Laboratory of Silicon and Advanced Semiconductor Materials and Center of Electron Microscopy, School of Materials Science and Engineering

L

Li Yan

Y

Yunjie Ding

Dalian National Laboratory for Clean Energy