Back to Search Start Over

Selectivity control of CO versus HCOO− production in the visible-light-driven catalytic reduction of CO2 with two cooperative metal sites

Authors :
Zhenguo Guo
Claudio Cometto
Hongbo Fan
Gui Chen
Kai-Chung Lau
Bing Ma
Thomas Groizard
Hongyan Zhao
Lingjing Chen
Wai-Lun Man
Tai-Chu Lau
Marc Robert
Shek-Man Yiu
Source :
Nature Catalysis. 2:801-808
Publication Year :
2019
Publisher :
Springer Science and Business Media LLC, 2019.

Abstract

It is highly desirable to discover molecular catalysts with controlled selectivity for visible-light-driven CO2 reduction to fuels. In the design of catalysts employing earth-abundant metals, progress has been made for CO production, but formate generation has been observed more rarely. Here, we report a binuclear Co complex bearing a bi-quaterpyridine ligand that can selectively reduce CO2 to HCOO− or CO under visible light irradiation. Selective formate production (maximum of 97%) was obtained with a turnover number of up to 821 in basic acetonitrile solution. Conversely, in the presence of a weak acid, CO2 reduction affords CO with high selectivity (maximum of 99%) and a maximum turnover number of 829. The catalytic process is controlled by the two Co atoms acting synergistically, and the selectivity can be steered towards the desired product by simply changing the acid co-substrate. Performing photocatalytic CO2 reduction in a selective fashion with molecular catalysts represents a considerable challenge. Here, a binuclear cobalt complex featuring a bi-quaterpyridine ligand is developed that can selectively afford either carbon monoxide or formate by selection of the reaction medium acidity.

Details

ISSN :
25201158
Volume :
2
Database :
OpenAIRE
Journal :
Nature Catalysis
Accession number :
edsair.doi...........72639f2cc4b40001bd87e763bbccc753
Full Text :
https://doi.org/10.1038/s41929-019-0331-6