Atmospheric CO₂-to-acetaldehyde artificial photosynthesis in metallo hydrogen-bonded organic frameworks
Jun Pang, Xinyu Bai, Junjie Dai, Sijie Liu, Shuang‐Feng Yin, Yong Pei, Rong Tan
Hunan Normal University Xiangtan University Hunan University of Science and Technology
内容与影响
Artificial photosynthesis of acetaldehyde from atmospheric CO 2 is highly promising, yet remains severely limited by low CO 2 concentration in air and sluggish proton transfer kinetics. Herein, we report metallo hydrogen-bonded organic frameworks (MHOFs) of HNNU-X (X = O, S, Se) which enable acetaldehyde synthesis directly from air, water, and natural sunlight. Among them, HNNU-Se exhibits a competitive acetaldehyde production rate of 557.1 μmol g⁻¹ h⁻¹ with high electron-based selectivity of 95% under outdoor conditions, without need of sacrificial agents. Mechanistic studies reveal that HNNU-X creates a proton-rich microenvironment in which [Zn(tpy)] 2+ cations function as CO 2 capture and activation sites for direct air capture, while [XCN] – anions serve as proton shuttles, facilitating rapid transfer of in-situ generated H⁺ from solar-driven water oxidation to adsorbed CO 2 . This work enables the synergistic coupling of CO 2 reduction and H 2 O oxidation, thereby achieving efficient artificial photosynthesis of acetaldehyde.
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材料 / 化学Covalent Organic Framework Applications
Metal-Organic Frameworks: Synthesis and Applications · CO2 Reduction Techniques and Catalysts