Mimicking Overall Photosynthesis by Incorporating Paired Ce(III) Single‐Atom Sites Into Covalent Organic Framework

Q Qianjun Zhi (Guizhou Key Laboratory of Macrocyclic and Supramolecular Chemistry School of Chemistry and Chemical Engineering Guizhou University Guiyang China) N Ning Li B Baoqiu Yu (Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials, Department of Chemistry and Chemical Engineering, School of Chemistry and Biological Engineering) D Dongdong Qi (Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials, Department of Chemistry and Chemical Engineering, School of Chemistry and Biological Engineering) H Houhe Pan (Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials School of Chemistry and Biological Engineering University of Science and Technology Beijing Beijing P.R. China) J Junjin Chen S Senzhi Li (Beijing Key Laboratory For Science and Application of Functional Molecular and Crystalline Materials School of Chemistry and Biological Engineering University of Science and Technology Beijing Beijing China) K Kang Wang Y Yunpeng Liu (Multi-disciplinary Research Division) S Shangwei Yuan (Key Laboratory of Macrocyclic and Supramolecular Chemistry of Guizhou Province, School of Chemistry and Chemical Engineering) X Xin Xiao (Key Laboratory of Macrocyclic and Supramolecular Chemistry of Guizhou Province, School of Chemistry and Chemical Engineering) B Bin Liu J Jianzhuang Jiang (Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials, Department of Chemistry and Chemical Engineering, School of Chemistry and Biological Engineering)

Abstract

ABSTRACT Artificial photosynthesis that mimics overall photosynthesis towards converting CO 2 and H 2 O to C 2+ chemicals still remains a great challenge due to the lack of efficient photocatalysts containing both water oxidation reaction (WOR) and CO 2 reduction reaction (CO 2 RR) active sites with good visible‐light absorption capability and matched band structure. Herein, we developed a three‐dimensional covalent organic framework (3D COF), BPDA‐AmCOF‐Ce, containing paired Ce(III) single atomic sites and pyrene moieties. The two‐fold interpenetrated bcu topology of BPDA‐AmCOF‐Ce with two neighboring 2,2'‐bipyridine moieties of BPDA results in a short distance of 5.63 Å for paired Ce atoms, capable of inducing C‐C coupling in CO 2 RR. This, together with exposed pyrene moieties‐effective in driving 2e − WOR, good visible light absorption capacity, and matched band structure, enables BPDA‐AmCOF‐Ce to exhibit excellent overall photosynthesis performance, converting CO 2 and H 2 O to CH 3 COOH and H 2 O 2 at high production rates of 166.67 and 601.42 µmol g catalyst −1 h −1 , respectively, with selectivity upto 94.4% under visible light ( λ > 420 nm) illumination. This work not only provides insights into the design and fabrication of efficient artificial photocatalysts to mimic overall photosynthesis but also highlights the significance of combining COFs with single‐atom catalysts towards engineering reaction pathways in photocatalysis.

Article Details

Volume / Issue Vol. 65, Issue 33
Published August 10, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

Q

Qianjun Zhi

Guizhou Key Laboratory of Macrocyclic and Supramolecular Chemistry School of Chemistry and Chemical Engineering Guizhou University Guiyang China

N

Ning Li

B

Baoqiu Yu

Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials, Department of Chemistry and Chemical Engineering, School of Chemistry and Biological Engineering

D

Dongdong Qi

Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials, Department of Chemistry and Chemical Engineering, School of Chemistry and Biological Engineering

H

Houhe Pan

Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials School of Chemistry and Biological Engineering University of Science and Technology Beijing Beijing P.R. China

J

Junjin Chen

S

Senzhi Li

Beijing Key Laboratory For Science and Application of Functional Molecular and Crystalline Materials School of Chemistry and Biological Engineering University of Science and Technology Beijing Beijing China

K

Kang Wang

Y

Yunpeng Liu

Multi-disciplinary Research Division

S

Shangwei Yuan

Key Laboratory of Macrocyclic and Supramolecular Chemistry of Guizhou Province, School of Chemistry and Chemical Engineering

X

Xin Xiao

Key Laboratory of Macrocyclic and Supramolecular Chemistry of Guizhou Province, School of Chemistry and Chemical Engineering

B

Bin Liu

J

Jianzhuang Jiang

Beijing Key Laboratory for Science and Application of Functional Molecular and Crystalline Materials, Department of Chemistry and Chemical Engineering, School of Chemistry and Biological Engineering