Coupling photocatalytic CO 2 reduction and CH 3 OH oxidation for selective dimethoxymethane production

Currently, conventional dimethoxymethane synthesis methods are environmentally unfriendly. Here, we report a photo-redox catalysis system to generate dimethoxymethane using a silver and tungsten co-modified blue titanium dioxide catalyst (Ag.W-BTO) by coupling CO reduction and CH OH oxidation under...

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Veröffentlicht in:Nature communications 2024-07, Vol.15 (1), p.6047
Hauptverfasser: Wang, Yixuan, Liu, Yang, Wang, Lingling, Perumal, Silambarasan, Wang, Hongdan, Ko, Hyun, Dong, Chung-Li, Zhang, Panpan, Wang, Shuaijun, Nga, Ta Thi Thuy, Kim, Young Dok, Ji, Yujing, Zhao, Shufang, Kim, Ji-Hee, Yee, Dong-Yub, Hwang, Yosep, Zhang, Jinqiang, Kim, Min Gyu, Lee, Hyoyoung
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Sprache:eng
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Zusammenfassung:Currently, conventional dimethoxymethane synthesis methods are environmentally unfriendly. Here, we report a photo-redox catalysis system to generate dimethoxymethane using a silver and tungsten co-modified blue titanium dioxide catalyst (Ag.W-BTO) by coupling CO reduction and CH OH oxidation under mild conditions. The Ag.W-BTO structure and its electron and hole transfer are comprehensively investigated by combining advanced characterizations and theoretical studies. Strikingly, Ag.W-BTO achieve a record photocatalytic activity of 5702.49 µmol g with 92.08% dimethoxymethane selectivity in 9 h of ultraviolet-visible irradiation without sacrificial agents. Systematic isotope labeling experiments, in-situ diffuse reflectance infrared Fourier-transform analysis, and theoretical calculations reveal that the Ag and W species respectively catalyze CO conversion to *CH O and CH OH oxidation to *CH O. Subsequently, an asymmetric carbon-oxygen coupling process between these two crucial intermediates produces dimethoxymethane. This work presents a CO photocatalytic reduction system for multi-carbon production to meet the objectives of sustainable economic development and carbon neutrality.
ISSN:2041-1723
DOI:10.1038/s41467-024-49927-1