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Elucidating the structure-dependent selectivity of CuZn towards methane and ethanol in CO(2) electroreduction using tailored Cu/ZnO precatalysts

Understanding the catalyst compositional and structural features that control selectivity is of uttermost importance to target desired products in chemical reactions. In this joint experimental–computational work, we leverage tailored Cu/ZnO precatalysts as a material platform to identify the intrin...

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Autores principales: Varandili, Seyedeh Behnaz, Stoian, Dragos, Vavra, Jan, Rossi, Kevin, Pankhurst, James R., Guntern, Yannick T., López, Núria, Buonsanti, Raffaella
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8580038/
https://www.ncbi.nlm.nih.gov/pubmed/34880999
http://dx.doi.org/10.1039/d1sc04271h
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author Varandili, Seyedeh Behnaz
Stoian, Dragos
Vavra, Jan
Rossi, Kevin
Pankhurst, James R.
Guntern, Yannick T.
López, Núria
Buonsanti, Raffaella
author_facet Varandili, Seyedeh Behnaz
Stoian, Dragos
Vavra, Jan
Rossi, Kevin
Pankhurst, James R.
Guntern, Yannick T.
López, Núria
Buonsanti, Raffaella
author_sort Varandili, Seyedeh Behnaz
collection PubMed
description Understanding the catalyst compositional and structural features that control selectivity is of uttermost importance to target desired products in chemical reactions. In this joint experimental–computational work, we leverage tailored Cu/ZnO precatalysts as a material platform to identify the intrinsic features of methane-producing and ethanol-producing CuZn catalysts in the electrochemical CO(2) reduction reaction (CO(2)RR). Specifically, we find that Cu@ZnO nanocrystals, where a central Cu domain is decorated with ZnO domains, and ZnO@Cu nanocrystals, where a central ZnO domain is decorated with Cu domains, evolve into Cu@CuZn core@shell catalysts that are selective for methane (∼52%) and ethanol (∼39%), respectively. Operando X-ray absorption spectroscopy and various microscopy methods evidence that a higher degree of surface alloying along with a higher concentration of metallic Zn improve the ethanol selectivity. Density functional theory explains that the combination of electronic and tandem effects accounts for such selectivity. These findings mark a step ahead towards understanding structure–property relationships in bimetallic catalysts for the CO(2)RR and their rational tuning to increase selectivity towards target products, especially alcohols.
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spelling pubmed-85800382021-12-07 Elucidating the structure-dependent selectivity of CuZn towards methane and ethanol in CO(2) electroreduction using tailored Cu/ZnO precatalysts Varandili, Seyedeh Behnaz Stoian, Dragos Vavra, Jan Rossi, Kevin Pankhurst, James R. Guntern, Yannick T. López, Núria Buonsanti, Raffaella Chem Sci Chemistry Understanding the catalyst compositional and structural features that control selectivity is of uttermost importance to target desired products in chemical reactions. In this joint experimental–computational work, we leverage tailored Cu/ZnO precatalysts as a material platform to identify the intrinsic features of methane-producing and ethanol-producing CuZn catalysts in the electrochemical CO(2) reduction reaction (CO(2)RR). Specifically, we find that Cu@ZnO nanocrystals, where a central Cu domain is decorated with ZnO domains, and ZnO@Cu nanocrystals, where a central ZnO domain is decorated with Cu domains, evolve into Cu@CuZn core@shell catalysts that are selective for methane (∼52%) and ethanol (∼39%), respectively. Operando X-ray absorption spectroscopy and various microscopy methods evidence that a higher degree of surface alloying along with a higher concentration of metallic Zn improve the ethanol selectivity. Density functional theory explains that the combination of electronic and tandem effects accounts for such selectivity. These findings mark a step ahead towards understanding structure–property relationships in bimetallic catalysts for the CO(2)RR and their rational tuning to increase selectivity towards target products, especially alcohols. The Royal Society of Chemistry 2021-10-08 /pmc/articles/PMC8580038/ /pubmed/34880999 http://dx.doi.org/10.1039/d1sc04271h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Varandili, Seyedeh Behnaz
Stoian, Dragos
Vavra, Jan
Rossi, Kevin
Pankhurst, James R.
Guntern, Yannick T.
López, Núria
Buonsanti, Raffaella
Elucidating the structure-dependent selectivity of CuZn towards methane and ethanol in CO(2) electroreduction using tailored Cu/ZnO precatalysts
title Elucidating the structure-dependent selectivity of CuZn towards methane and ethanol in CO(2) electroreduction using tailored Cu/ZnO precatalysts
title_full Elucidating the structure-dependent selectivity of CuZn towards methane and ethanol in CO(2) electroreduction using tailored Cu/ZnO precatalysts
title_fullStr Elucidating the structure-dependent selectivity of CuZn towards methane and ethanol in CO(2) electroreduction using tailored Cu/ZnO precatalysts
title_full_unstemmed Elucidating the structure-dependent selectivity of CuZn towards methane and ethanol in CO(2) electroreduction using tailored Cu/ZnO precatalysts
title_short Elucidating the structure-dependent selectivity of CuZn towards methane and ethanol in CO(2) electroreduction using tailored Cu/ZnO precatalysts
title_sort elucidating the structure-dependent selectivity of cuzn towards methane and ethanol in co(2) electroreduction using tailored cu/zno precatalysts
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8580038/
https://www.ncbi.nlm.nih.gov/pubmed/34880999
http://dx.doi.org/10.1039/d1sc04271h
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