Engineering Crystalline/Amorphous Interfaces for Enhanced CO <sub>2</sub> Electroreduction

B Bingkun Li (Beijing Key Lab for Source Control Technology of Water Pollution Engineering Research Center for Water Pollution Source Control &amp; Eco‐remediation College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China) Z Ziyi Zhong H Hao Li M Mingzhu Yue (Beijing Key Lab for Source Control Technology of Water Pollution Engineering Research Center for Water Pollution Source Control &amp; Eco‐remediation College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China) Q Qingman Niu (Beijing Key Lab for Source Control Technology of Water Pollution Engineering Research Center for Water Pollution Source Control &amp; Eco‐remediation College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China) L Lu Liu W Wenfu Xie (Beijing Key Lab for Source Control Technology of Water Pollution Engineering Research Center for Water Pollution Source Control &amp; Eco‐remediation College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China) M Min Li M Mingfei Shao (State Key Laboratory of Chemical Resource Engineering, College of Chemistry) Q Qiang Wang

Abstract

Abstract In the request for carbon neutrality, CO 2 electroreduction to high‐value fuels and chemicals, particularly formic acid, has become as a promising approach. However, implementing it on an industrial scale is hindered by the catalyst instability under high current densities and the excessive energy consumption of conventional electrolysis systems. To tackle these challenges, we propose an amorphization strategy to regulate catalyst reconstruction under operational conditions. In particular, an amorphous In‐based catalyst, InO x (OH) 3−2x , was designed and achieved high Faradaic efficiencies of 98% at −800 to −1000 mA cm −2 for CO 2 electroreduction to formate, while maintaining stability for 100 h. Mechanistic studies show that InO x (OH) 3−2x undergoes partial reduction to stable crystalline/amorphous In/In─OH interfaces instead of fully reducing to metallic In, enhancing the adsorption of CO 2 and *OCHO intermediate. To improve the economic viability of electrolysis system, a CO 2 electroreduction coupled with waste plastics electrooxidation system for formate production was constructed. Compared to conventional electrolysis system, the coupled system reduced energy consumption by 34.7% and increased formate production by 49.7%, offering a more energy‐efficient and cost‐effective approach to CO 2 electroreduction.

Article Details

Volume / Issue Vol. 64, Issue 34
Published August 18, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

B

Bingkun Li

Beijing Key Lab for Source Control Technology of Water Pollution Engineering Research Center for Water Pollution Source Control &amp; Eco‐remediation College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China

Z

Ziyi Zhong

H

Hao Li

M

Mingzhu Yue

Beijing Key Lab for Source Control Technology of Water Pollution Engineering Research Center for Water Pollution Source Control &amp; Eco‐remediation College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China

Q

Qingman Niu

Beijing Key Lab for Source Control Technology of Water Pollution Engineering Research Center for Water Pollution Source Control &amp; Eco‐remediation College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China

L

Lu Liu

W

Wenfu Xie

Beijing Key Lab for Source Control Technology of Water Pollution Engineering Research Center for Water Pollution Source Control &amp; Eco‐remediation College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China

M

Min Li

M

Mingfei Shao

State Key Laboratory of Chemical Resource Engineering, College of Chemistry

Q

Qiang Wang