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Updated: Jan 8, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Strongly Electron-Accepting Lattice Oxygen of CeO2 for Highly Efficient Dimethyl Carbonate Synthesis from CO2 and
Guoqiang Hou1, Jinzhe Zhang1, Di Xu1
1School of Power and Mechanical Engineering, Wuhan University, Wuhan, 430072, China.
Abstract:
Converting CO2 and green methanol to dimethyl carbonate (DMC) has both theoretical and practical value in carbon neutrality and MeOH upgrading, but its efficiency is far from the application requirement due to the thermodynamic non-spontaneous process limitation and high kinetic barrier in CO2 and methoxy coupling. Herein, the strongly electron-accepting lattice oxygen was introduced onto CeO2 via a hydroxylation-induced Pt spontaneous redispersion strategy. The introduction of strongly electron-accepting lattice oxygen enabled the highly reactive *CO intermediate formation, which triggered a novel thermodynamically favorable *CH3O-*CO coupling to DMC synthesis. In addition, the lattice oxygen modification also markedly regulated the electron distribution of catalyst, thereby optimizing the adsorption strength of CO2 and methanol and thus reducing the entire reaction barrier of *CH3O-CO2 coupling to DMC via a rate-determining-step shifting. Benefiting from these advantages, Pt1/CeO2-SO sample achieved a DMC yield of 62.1 mmol g-1-six-fold higher than reported conventional catalyst under similar conditions. This work revealed the key role of strongly electron-accepting lattice oxygen in the innovative DMC synthesis pathway, with potential applications in developing more efficient synthetic routes for methanol upgrading and CO2 resource utilization.
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