Spontaneous Atomic Sites Formation in Wurtzite CoO Nanorods for Robust CO 2 Photoreduction

Controlled incorporation of single atoms in a suitable host matrix can result in a radical transformation in catalytic properties. However, finding a straightforward synthetic strategy that offers a compelling combination of solution processing, atomic doping and a matching host is still a grand cha...

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Veröffentlicht in:Advanced functional materials 2022-04, Vol.32 (15)
Hauptverfasser: Wei, Jishi, Meng, Fan Lu, Li, Tongtao, Zhang, Tianxi, Xi, Shibo, Ong, Wei Li, Wang, Xiao‐Qiao, Zhang, Xinyue, Bosman, Michel, Ho, Ghim Wei
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Sprache:eng
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Zusammenfassung:Controlled incorporation of single atoms in a suitable host matrix can result in a radical transformation in catalytic properties. However, finding a straightforward synthetic strategy that offers a compelling combination of solution processing, atomic doping and a matching host is still a grand challenge. Here, a spontaneous heteroatom formation of atomic Zn sites in well‐defined wurtzite CoO nanorods, delivering high photoreduction rates, reaching 86.7 µmol g −1 h −1 for CO and 31.4 µmol g −1 h −1 for CH 4 production is reported. Based on the validation of atomic Zn sites structures, catalytic process tracking via in situ/ex situ spectroscopic probes, and related structural simulations, a good description of the catalytic reaction kinetics for Zn/CoO as a function of applied potential is established, revealing how the single doping sites influence the CO 2 photoreduction.
ISSN:1616-301X
1616-3028
DOI:10.1002/adfm.202109693