| Literature DB >> 32355028 |
Zongyuan Liu1, Erwei Huang2, Ivan Orozco2, Wenjie Liao2, Robert M Palomino1, Ning Rui1, Thomas Duchoň3, Slavomir Nemšák4, David C Grinter5, Mausumi Mahapatra1, Ping Liu6,2, José A Rodriguez6,2, Sanjaya D Senanayake6.
Abstract
Highly selective oxidation of methane to methanol has long been challenging in catalysis. Here, we reveal key steps for the pro-motion of this reaction by water when tuning the selectivity of a well-defined CeO2/Cu2O/Cu(111) catalyst from carbon monoxide and carbon dioxide to methanol under a reaction environment with methane, oxygen, and water. Ambient-pressure x-ray photoelectron spectroscopy showed that water added to methane and oxygen led to surface methoxy groups and accelerated methanol production. These results were consistent with density functional theory calculations and kinetic Monte Carlo simulations, which showed that water preferentially dissociates over the active cerium ions at the CeO2-Cu2O/Cu(111) interface. The adsorbed hydroxyl species blocked O-O bond cleavage that would dehydrogenate methoxy groups to carbon monoxide and carbon dioxide, and it directly converted this species to methanol, while oxygen reoxidized the reduced surface. Water adsorption also displaced the produced methanol into the gas phase.Entities:
Year: 2020 PMID: 32355028 DOI: 10.1126/science.aba5005
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728