Integrating Multifunctionalities into a 3D Covalent Organic Framework for Efficient CO <sub>2</sub> Photoreduction

K Ke Cheng (Department of Biomedical Engineering, Columbia University) S Shuo Kong (School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion) J Jungeng Wang (School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion Shandong University No. 27 Shanda South Road Ji'nan 250100 P.R. China) Q Qiurong Wang (School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion Shandong University No. 27 Shanda South Road Ji'nan 250100 P.R. China) S Shiling Yuan P Pei‐Zhou Li (School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion Shandong University No. 27 Shanda South Road Ji'nan 250100 P.R. China) Y Yanli Zhao (School of Chemistry, Chemical Engineering and Biotechnology)

Abstract

Abstract Fabrication of highly efficient photocatalysts for CO 2 conversion is still challenging. Herein, integrating nitrogen‐rich organic cages and the photoactive porphyrin moieties together, a 3D covalent organic framework (COF), Cage‐PorCOF, is successfully synthesized. After incorporating metal ions (Co 2+ and Ni 2+ ) into the cage‐based COF, Cage‐PorCOF(Co) and Cage‐PorCOF(Ni) are subsequently constructed for the CO 2 photoreduction. Catalytic experiments show impressive performance in CO 2 photoreduction with CO generation rates of up to 48 748 and 28 446 µmol g −1  h −1 in the first initiating hour for Cage‐PorCOF(Co) and Cage‐PorCOF(Ni), respectively, which is attributed to the synergistic effects from CO 2 ‐affinity of the porous frameworks and incorporated metal atoms, the light‐absorption and charge separation ability of metalloporphyrin groups as well as the fully exposed single‐atomic catalytic sites confirmed by both experimental and theoretical analyses. This study demonstrates that by the integration of multiple functionalities into 3D porous solids, highly effective photocatalysts for CO 2 conversion can be achieved.

Article Details

Volume / Issue Vol. 64, Issue 26
Published June 24, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

K

Ke Cheng

Department of Biomedical Engineering, Columbia University

S

Shuo Kong

School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion

J

Jungeng Wang

School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion Shandong University No. 27 Shanda South Road Ji'nan 250100 P.R. China

Q

Qiurong Wang

School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion Shandong University No. 27 Shanda South Road Ji'nan 250100 P.R. China

S

Shiling Yuan

P

Pei‐Zhou Li

School of Chemistry and Chemical Engineering, Shandong Provincial Key Laboratory for Science of Material Creation and Energy Conversion, Science Center for Material Creation and Energy Conversion Shandong University No. 27 Shanda South Road Ji'nan 250100 P.R. China

Y

Yanli Zhao

School of Chemistry, Chemical Engineering and Biotechnology