Coordination‐Engineered Cu Single Atom on N‐Doped Carbon Nanosheets for Highly‐Efficient Photocatalytic CO 2 Reduction to CH 4

ABSTRACT Photocatalytic CO 2 conversion offers sustainable catalytic pathway for solar fuel production and CO 2 mitigation. However, the mechanism of coordination environment of metal catalytic centers in CO 2 adsorption and the selectivity of intermediates and products remains unclear. Herein, two N‐doped carbon nanosheets hosting coordination‐engineered Cu single atom (referred to as Cu‐N x , where x denotes the number of coordinated N atoms, e.g., Cu‐N 3 and Cu‐N 4 ) were synthesized via a simple two‐step pyrolysis process. The Cu‐N coordination number decreases with increasing pyrolysis temperature. Under visible light irradiation, the optimal catalyst with Cu‐N 3 coordination achieves a CH 4 yield of 219 µmol in 10 h using 5 mg catalyst with a selectivity of 97% in the presence of photosensitizer. In contrast, the high‐coordinated Cu‐N 4 site dominated catalyst exhibits a significantly lower CH 4 yield (58 µmol) and selectivity (93.7%), highlighting the advantage of the Cu‐N 3 motif for efficient CH 4 production. Experimental and theoretical results reveal that low‐coordinated Cu‐N 3 site favors * CHO intermediate via * CO hydrogenation (ΔG = 0.71 eV) rather than * CO desorption (ΔG = 0.83 eV), thereby promoting the selective CH 4 generation during the CO 2 photoreduction. In addition, the Cu‐N 3 coordination enhances CO 2 adsorption and charge transfer from Cu to CO 2 compared to Cu‐N 4 coordination. This work underscores the critical role of atomic‐level coordination engineering in optimizing the catalytic performance of single atom catalysts for efficient and selective solar fuel production.

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Publication Details

Journal
Advanced Energy Materials
Published
2026-09-15
DOI
https://doi.org/10.1002/aenm.71595
Primary Topic
Advanced Photocatalysis Techniques
Type
article
Field-Weighted Citation Impact
0.00

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article

Coordination‐Engineered Cu Single Atom on N‐Doped Carbon Nanosheets for Highly‐Efficient Photocatalytic CO 2 Reduction to CH 4

Baiyang Yu, Tianhua Zhou, Lizhen Liu, Markus Kraft et al.
Advanced Energy Materials
Advanced Photocatalysis Techniques
article

Coordination‐Engineered Cu Single Atom on N‐Doped Carbon Nanosheets for Highly‐Efficient Photocatalytic CO 2 Reduction to CH 4

Baiyang Yu, Tianhua Zhou, Lizhen Liu, Markus Kraft, Rong Xu, Weinan Xing, Na Wang, Wen Liu, Liyang Qin, Chao‐Ying Gao
article en

Abstract

ABSTRACT Photocatalytic CO 2 conversion offers sustainable catalytic pathway for solar fuel production and CO 2 mitigation. However, the mechanism of coordination environment of metal catalytic centers in CO 2 adsorption and the selectivity of intermediates and products remains unclear. Herein, two N‐doped carbon nanosheets hosting coordination‐engineered Cu single atom (referred to as Cu‐N x , where x denotes the number of coordinated N atoms, e.g., Cu‐N 3 and Cu‐N 4 ) were synthesized via a simple two‐step pyrolysis process. The Cu‐N coordination number decreases with increasing pyrolysis temperature. Under visible light irradiation, the optimal catalyst with Cu‐N 3 coordination achieves a CH 4 yield of 219 µmol in 10 h using 5 mg catalyst with a selectivity of 97% in the presence of photosensitizer. In contrast, the high‐coordinated Cu‐N 4 site dominated catalyst exhibits a significantly lower CH 4 yield (58 µmol) and selectivity (93.7%), highlighting the advantage of the Cu‐N 3 motif for efficient CH 4 production. Experimental and theoretical results reveal that low‐coordinated Cu‐N 3 site favors * CHO intermediate via * CO hydrogenation (ΔG = 0.71 eV) rather than * CO desorption (ΔG = 0.83 eV), thereby promoting the selective CH 4 generation during the CO 2 photoreduction. In addition, the Cu‐N 3 coordination enhances CO 2 adsorption and charge transfer from Cu to CO 2 compared to Cu‐N 4 coordination. This work underscores the critical role of atomic‐level coordination engineering in optimizing the catalytic performance of single atom catalysts for efficient and selective solar fuel production.

Advanced Energy Materials
Inner Mongolia University for Nationalities (CN), National Kidney Foundation Singapore (SG), Nanjing Forestry University (CN), Nanyang Technological University (SG), University of Cambridge (GB), Inner Mongolia University (CN), Zhengzhou University (CN), Inner Mongolia Electric Power (China) (CN), Fujian Institute of Research on the Structure of Matter (CN)
National Research Foundation, National Research Foundation Singapore, Nanyang Technological University, National Natural Science Foundation of China
Responsible consumption and production
Openalex Percentile: Top 29%
Advanced Photocatalysis Techniques
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