Supramolecular Cage‐Based Heterojunction: Chloroplast Mimicked Artificial Photosynthesis for Efficient Ethanol Production

J Jing‐Wen Shi (Guangdong Provincial Key Laboratory of Carbon Dioxide Resource Utilization, School of Chemistry South China Normal University Guangzhou P. R. China) P Peng Liu S Shanshan Zheng Z Zhifeng Xin (Institute of Molecular Engineering and Applied Chemistry Anhui University of Technology Ma'anshan Anhui P. R. China) J Jing‐Jing Liu (Guangdong Provincial Key Laboratory of Carbon Dioxide Resource Utilization, School of Chemistry South China Normal University Guangzhou P. R. China) S Su‐Juan Yao (Guangdong Provincial Key Laboratory of Carbon Dioxide Resource Utilization, School of Chemistry South China Normal University Guangzhou P. R. China) K Kejing Shen (Institute of Molecular Engineering and Applied Chemistry Anhui University of Technology Ma'anshan Anhui P. R. China) Y Yifa Chen Y Ya‐Qian Lan (Guangdong Provincial Key Laboratory of Carbon Dioxide Resource Utilization School of Chemistry South China Normal University Guangzhou P. R. China)

Abstract

ABSTRACT Photosynthesis of C 2+ products like ethanol through artificial photosynthetic overall reaction is much desired yet generally challenged by spatial confinement/utilization of C 1 intermediates or kinetically sluggish C─C bond coupling in the complex multi‐electronic reduction processes. Inspired by nature, a supramolecular biomimetic heterojunction (Zn‐TIPP/CdS) photocatalyst was designed by mimicking chloroplasts. The coupling of the unique supramolecular cage structure of Zn‐TIPP with CdS in this heterojunction successfully simulates the comprehensive functions of stroma and grana in chloroplasts, achieving one of the highest ethanol production rates (138.9 µmol g −1 h −1 , 93% selectivity) via artificial photosynthesis, which significantly surpasses most previously documented photocatalysts. Driven by the fast charge transfer efficiency in the biomimetic heterojunction, the spatial confinement and multisite catalytic effects of the supramolecular cage in Zn‐TIPP enable the cascade conversion of CO 2 into ethanol as revealed by in situ characterizations and theoretical calculations. The establishment of such redox heterojunction would promote the design of efficient photocatalysts for the generation of value‐added fuels through artificial photosynthetic overall reaction.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 21, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

J

Jing‐Wen Shi

Guangdong Provincial Key Laboratory of Carbon Dioxide Resource Utilization, School of Chemistry South China Normal University Guangzhou P. R. China

P

Peng Liu

S

Shanshan Zheng

Z

Zhifeng Xin

Institute of Molecular Engineering and Applied Chemistry Anhui University of Technology Ma'anshan Anhui P. R. China

J

Jing‐Jing Liu

Guangdong Provincial Key Laboratory of Carbon Dioxide Resource Utilization, School of Chemistry South China Normal University Guangzhou P. R. China

S

Su‐Juan Yao

Guangdong Provincial Key Laboratory of Carbon Dioxide Resource Utilization, School of Chemistry South China Normal University Guangzhou P. R. China

K

Kejing Shen

Institute of Molecular Engineering and Applied Chemistry Anhui University of Technology Ma'anshan Anhui P. R. China

Y

Yifa Chen

Y

Ya‐Qian Lan

Guangdong Provincial Key Laboratory of Carbon Dioxide Resource Utilization School of Chemistry South China Normal University Guangzhou P. R. China