Efficient Visible-Light-Driven CO2 Reduction by a Cobalt Molecular Catalyst Covalently Linked to Mesoporous Carbon Nitride

Achieving visible-light-driven carbon dioxide reduction with high selectivity control and durability while using only earth abundant elements requires new strategies. Hybrid catalytic material was prepared upon covalent grafting a Co–quaterpyridine molecular complex to semiconductive mesoporous grap...

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Veröffentlicht in:Journal of the American Chemical Society 2020-04, Vol.142 (13), p.6188-6195
Hauptverfasser: Ma, Bing, Chen, Gui, Fave, Claire, Chen, Lingjing, Kuriki, Ryo, Maeda, Kazuhiko, Ishitani, Osamu, Lau, Tai-Chu, Bonin, Julien, Robert, Marc
Format: Artikel
Sprache:eng
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Zusammenfassung:Achieving visible-light-driven carbon dioxide reduction with high selectivity control and durability while using only earth abundant elements requires new strategies. Hybrid catalytic material was prepared upon covalent grafting a Co–quaterpyridine molecular complex to semiconductive mesoporous graphitic carbon nitride (mpg-C3N4) through an amide linkage. The molecular material was characterized by various spectroscopic techniques, including XPS, IR, and impedance spectroscopy. It proved to be a selective catalyst for CO production in acetonitrile using a solar simulator with a high 98% selectivity, while being remarkably robust since no degradation was observed after 4 days of irradiation (ca. 500 catalytic cycles). This unique combination of a selective molecular catalyst with a simple and robust semiconductive material opens new pathways for CO2 catalytic light-driven reduction.
ISSN:0002-7863
1520-5126
DOI:10.1021/jacs.9b13930