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Title:Healing of oxygen vacancies on reduced surfaces of gold-doped ceria
Authors:Nolan M., 2009
Abstract: As an oxidation-reduction catalyst, ceria can catalyze molecular oxidation and reduction. There has been a focus on understanding and enhancing the vacancy formation process to improve the oxidative power of ceria. However, it is important to also address healing of the surface vacancy. To investigate healing of oxygen vacancies in ceria, we study the interaction of atomic and molecular oxygen and NO2 with oxygen vacancies on gold-doped (110) and (100) surfaces using density functional theory, corrected for on-site Coulomb interactions (DFT+U). For atomic and molecular oxygen, adsorption at the reduced surface is favorable and results in an oxygen atom sitting in an oxygen lattice site, healing the oxygen vacancy. On undoped surfaces, O2 adsorbs as a peroxo (O22āˆ’) species. However, on the doped (110) surface a superoxo (O2āˆ’) species is present. When NO2 adsorbs (exothermically) at a divacancy surface, one oxygen of the molecule sits in the vacancy site and the Nā€“O distances are elongated and an [NO2]āˆ’ anion forms, similar to the undoped surface. Vacancy healing of ceria surfaces is favorable, even if vacancy formation is enhanced, justifying the current focus on improving the oxidative power of ceria. We briefly examine a catalytic cycle: the reaction of CO with adsorbed O2 on the undoped and doped surfaces, and find that the doped (110) surface facilitates CO oxidation.
ICHEC Project:Metal Oxide Surfaces and Interfaces: at the Frontier of First Principles Simulations
Publication:Journal of Chemical Physics (2009) 130: 144702
URL: http://dx.doi.org/10.1063/1.3110702
Keywords: adsorption; catalysts; cerium compounds; density functional theory; gold; oxidation; oxygen; reduction (chemical); surface chemistry; vacancies (crystal)
Status: Published

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