Deposited PtGe Clusters as Active and Durable Catalysts for CO Oxidation**

Author:

Ugartemendia Andoni1ORCID,Mercero Jose M.1ORCID,de Cózar Abel23,Melander Marko M.4ORCID,Akola Jaakko56ORCID,Jimenez‐Izal Elisa13ORCID

Affiliation:

1. Polimero eta Material Aurreratuak: Fisika Kimika eta Teknologia Saila Kimika Fakultatea Euskal Herriko Unibertsitatea (UPV/EHU) Donostia International Physics Center (DIPC) 20018 Donostia Euskadi Spain

2. Kimika Organiko I Saila Kimika Fakultatea Euskal Herriko Unibertsitatea (UPV/EHU) Donostia International Physics Center (DIPC) 20018 Donostia Euskadi Spain

3. IKERBASQUE Basque Foundation for Science Bilbao 48009 Euskadi Spain

4. Department of Chemistry Nanoscience Center University of Jyväskylä FI-40014 Jyväskylä Finland

5. Department of Physics Norwegian University of Science and Technology (NTNU) NO-7491 Trondheim Norway

6. Computational Physics Laboratory Faculty of Engineering and Natural Sciences Tampere University FI-33014 Tampere Finland

Abstract

AbstractControl of CO emissions raises serious environmental concerns in the current chemical industry, as well as in nascent technologies based on hydrogen such as electrolyzers and fuel cells. As for now, Pt remains one of the state‐of‐the‐art catalysts for the CO oxidation reaction, but unfortunately, it suffers from CO self‐poisoning. Recently, Pt−Ge alloys were proposed to be an excellent alternative to reduce CO poisoning. This work investigates the impact of Ge content on the CO oxidation kinetics of Pt4Gen subnanoclusters supported on MgO. A Ge concentration dependence of the reaction kinetics is found due to a strong synergy between Pt and Ge. Pt−Ge nanoalloys act as a bifunctional catalyst by displaying dual adsorption sites; i. e., CO is adsorbed on Pt whereas oxygen binds to Ge, forming an alternative oxygen source GeOx. Besides, Ge alloying modifies the electronic structure of Pt (ligand effects) and reduces the affinity to CO. In this way, the competition between CO and O2 adsorption and the overbinding of CO is alleviated, achieving a CO poisoning‐free kinetic regime. Our calculations suggest that Pt4Ge3 is the optimal catalyst, evidencing that alloying composition is a parameter of extreme importance in nanocatalyst design. The work relies on global optimization search techniques to determine the accessibility of multiple structures at different conditions, mechanistic studies and microkinetic modeling.

Funder

Donostia International Physics Center

Barcelona Supercomputing Center

Publisher

Wiley

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Catalysis

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