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Stability and Reversible Oxidation of Sub‐Nanometric Cu5 Metal Clusters: Integrated Experimental Study and Theoretical Modeling**

Authors :
Universidade de Santiago de Compostela. Departamento de Química Física
Buceta Fernández, David
Huseyinova, Shahana
Cuerva Vidales, Miguel
Lozano, Héctor
Giovanetti, Lisandro J.
Ramallo López, José Martín
López‐Caballero, Patricia
Zanchet, Alexandre
Mitrushchenkov, Alexander O.
Hauser, Andreas W.
Barone, Giampaolo
Huck‐Iriart, Cristián
Escudero, Carlos
Hernández‐Garrido, Juan Carlos
Calvino Gámez, José Juan
López‐Haro, Miguel
Lara Castells, María Pilar de
Requejo, Félix G.
López Quintela, Manuel Arturo
Universidade de Santiago de Compostela. Departamento de Química Física
Buceta Fernández, David
Huseyinova, Shahana
Cuerva Vidales, Miguel
Lozano, Héctor
Giovanetti, Lisandro J.
Ramallo López, José Martín
López‐Caballero, Patricia
Zanchet, Alexandre
Mitrushchenkov, Alexander O.
Hauser, Andreas W.
Barone, Giampaolo
Huck‐Iriart, Cristián
Escudero, Carlos
Hernández‐Garrido, Juan Carlos
Calvino Gámez, José Juan
López‐Haro, Miguel
Lara Castells, María Pilar de
Requejo, Félix G.
López Quintela, Manuel Arturo
Publication Year :
2023

Abstract

Sub-nanometer metal clusters have special physical and chemical properties, significantly different from those of nanoparticles. However, there is a major concern about their thermal stability and susceptibility to oxidation. In situ X-ray Absorption spectroscopy and Near Ambient Pressure X-ray Photoelectron spectroscopy results reveal that supported Cu5 clusters are resistant to irreversible oxidation at least up to 773 K, even in the presence of 0.15 mbar of oxygen. These experimental findings can be formally described by a theoretical model which combines dispersion-corrected DFT and first principles thermochemistry revealing that most of the adsorbed O2 molecules are transformed into superoxo and peroxo species by an interplay of collective charge transfer within the network of Cu atoms and large amplitude “breathing” motions. A chemical phase diagram for Cu oxidation states of the Cu5-oxygen system is presented, clearly different from the already known bulk and nano-structured chemistry of Cu

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1416008457
Document Type :
Electronic Resource