Operando Insight into the Correlation between the Structure and Composition of CuZn Nanoparticles and Their Selectivity for the Electrochemical CO 2 Reduction.

Autor: Jeon HS; Department of Interface Science , Fritz-Haber Institute of the Max-Planck Society , 14195 Berlin , Germany., Timoshenko J; Department of Interface Science , Fritz-Haber Institute of the Max-Planck Society , 14195 Berlin , Germany., Scholten F; Department of Interface Science , Fritz-Haber Institute of the Max-Planck Society , 14195 Berlin , Germany., Sinev I; Department of Physics , Ruhr-University Bochum , 44780 Bochum , Germany., Herzog A; Department of Interface Science , Fritz-Haber Institute of the Max-Planck Society , 14195 Berlin , Germany., Haase FT; Department of Interface Science , Fritz-Haber Institute of the Max-Planck Society , 14195 Berlin , Germany., Roldan Cuenya B; Department of Interface Science , Fritz-Haber Institute of the Max-Planck Society , 14195 Berlin , Germany.
Jazyk: angličtina
Zdroj: Journal of the American Chemical Society [J Am Chem Soc] 2019 Dec 18; Vol. 141 (50), pp. 19879-19887. Date of Electronic Publication: 2019 Dec 09.
DOI: 10.1021/jacs.9b10709
Abstrakt: Bimetallic CuZn catalysts have been recently proposed as alternatives in order to achieve selectivity control during the electrochemical reduction of CO 2 (CO 2 RR). However, fundamental understanding of the underlying reaction mechanism and parameters determining the CO 2 RR performance is still missing. In this study, we have employed size-controlled (∼5 nm) Cu 100- x Zn x nanoparticles (NPs) supported on carbon to investigate the correlation between their structure and composition and catalytic performance. By tuning the concentration of Zn, a drastic increase in CH 4 selectivity [∼70% Faradaic efficiency (F.E.)] could be achieved for Zn contents from 10 to 50, which was accompanied by a suppression of the H 2 production. Samples containing a higher Zn concentration displayed significantly lower CH 4 production and an abrupt switch in the selectivity to CO. Lack of metal leaching was observed based on quasi in situ X-ray photoelectron spectroscopy (XPS). Operando X-ray absorption fine structure (XAFS) spectroscopy measurements revealed that the alloying of Cu atoms with Zn atoms takes place under reaction conditions and plays a determining role in the product selectivity. Time-dependent XAFS analysis showed that the local structure and chemical environment around the Cu atoms continuously evolve during CO 2 RR for several hours. In particular, cationic Zn species initially present were found to get reduced as the reaction proceeded, leading to the formation of a CuZn alloy (brass). The evolution of the Cu-Zn interaction with time during CO 2 RR was found to be responsible for the change in the selectivity from CH 4 over Cu-ZnO NPs to CO over CuZn alloy NPs. This study highlights the importance of having access to in depth information on the interplay between the different atomic species in bimetallic NP electrocatalysts under operando reaction conditions in order to understand and ultimately tune their reactivity.
Databáze: MEDLINE