Orbital Engineering via Double‐Exchange Interaction in a Bimetallic MOF for Electrocatalytic C─S Coupling of CO <sub>2</sub> and Sulfate

Z Zijian Gao (Center of Materials Science and Optoelectronics Engineering) Y Yu Sun Y Yiling Bai R Runzhi Wang T Tiejun Luo (CAS Key Laboratory of Green Process and Engineering Institute of Process Engineering Chinese Academy of Sciences Beijing P. R. China) X Xuehua Zhang (University of Alberta , , 9211 116 Street NW , , ,) M Menglei Yuan (State Key Laboratory of Solidification Processing and School of Materials Science and Engineering) G Guangjin Zhang (CAS Key Laboratory of Green Process and Engineering, Institute of Process Engineering)

Abstract

ABSTRACT Guided by molecular orbital theory, we have designed and synthesized a novel bimetallic metal‐organic framework (BTC‐Co‐O‐Cu‐BTA) for the electrocatalytic C─S coupling of CO 2 and sulfate. The integration of edge/corner‐sharing CoO 6 octahedra and CuO 5 square pyramids establishes a robust double‐exchange interaction (DEI). This interaction effectively modulates the spin states of the cobalt and copper sites while optimizing their electronic configurations. This tailored electronic environment disrupts the hyperconjugation symmetry of the S─O bonds in sulfate, enabling the simultaneous activation of both CO 2 and sulfate. Consequently, the catalyst achieves highly efficient C─S coupling with a remarkable Faradaic efficiency of 17.43% under a pure CO 2 atmosphere, significantly outperforming conventional systems. Through in‐situ FTIR, NMR, and electrochemical impedance spectroscopy, we demonstrate that this bimetallic synergy substantially lowers the reaction energy barrier and allows for the capture of key dynamic intermediates. Furthermore, magnetic measurements reveal a DEI‐induced transition from an antiferromagnetic to a ferromagnetic electronic state, successfully validating our proposed orbital engineering mechanism. This work provides a novel strategy for activating inert chemical bonds and establishes fundamental principles for the design of high‐performance electrocatalysts.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 05, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

Z

Zijian Gao

Center of Materials Science and Optoelectronics Engineering

Y

Yu Sun

Y

Yiling Bai

R

Runzhi Wang

T

Tiejun Luo

CAS Key Laboratory of Green Process and Engineering Institute of Process Engineering Chinese Academy of Sciences Beijing P. R. China

X

Xuehua Zhang

University of Alberta , , 9211 116 Street NW , , ,

M

Menglei Yuan

State Key Laboratory of Solidification Processing and School of Materials Science and Engineering

G

Guangjin Zhang

CAS Key Laboratory of Green Process and Engineering, Institute of Process Engineering