| Literature DB >> 32661223 |
Rosa M Arán-Ais1, Rubén Rizo1, Philipp Grosse1, Gerardo Algara-Siller2, Kassiogé Dembélé2, Milivoj Plodinec2, Thomas Lunkenbein2, See Wee Chee3, Beatriz Roldan Cuenya4.
Abstract
Copper is a widely studied catalyst material for the electrochemical conversion of carbon dioxide to valuable hydrocarbons. In particular, copper-based nanostructures expressing predominantly {100} facets have shown high selectivity toward ethylene formation, a desired reaction product. However, the stability of such tailored nanostructures under reaction conditions remains poorly understood. Here, using liquid cell transmission electron microscopy, we show the formation of cubic copper oxide particles from copper sulfate solutions during direct electrochemical synthesis and their subsequent morphological evolution in a carbon dioxide-saturated 0.1 M potassium bicarbonate solution under a reductive potential. Shape-selected synthesis of copper oxide cubes was achieved through: (1) the addition of chloride ions and (2) alternating the potentials within a narrow window where the deposited non-cubic particles dissolve, but cubic ones do not. Our results indicate that copper oxide cubes change their morphology rapidly under carbon dioxide electroreduction-relevant conditions, leading to an extensive re-structuring of the working electrode surface.Entities:
Year: 2020 PMID: 32661223 PMCID: PMC7359295 DOI: 10.1038/s41467-020-17220-6
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919