Vibrational frequencies of CO bound to all three low-index cerium oxide surfaces: A consistent theoretical description of vacancy-induced changes using density functional theory

Author:

Lustemberg Pablo G.123ORCID,Yang Chengwu4ORCID,Wang Yuemin5ORCID,Wöll Christof5ORCID,Ganduglia-Pirovano M. Verónica3ORCID

Affiliation:

1. Institute of Physics Rosario, IFIR, National Scientific and Technical Research Council, CONICET 1 , and , S2000EKF Rosario, Santa Fe, Argentina

2. National University of Rosario, UNR 1 , and , S2000EKF Rosario, Santa Fe, Argentina

3. Institute of Catalysis and Petrochemistry, ICP, Spanish National Research Council, CSIC 2 , 28049 Madrid, Spain

4. School of Space and Environment, Beihang University 3 , Beijing 100191, People’s Republic of China

5. Institute of Functional Interfaces, IFG, Karlsruhe Institute of Technology, KIT 4 , 76344 Eggenstein-Leopoldshafen, Germany

Abstract

The facet-dependent adsorption of CO on oxidized and reduced CeO2 single crystal surfaces is reviewed, with emphasis on the effect of CO coverage and the ability of state-of-the-art quantum-mechanical methods to provide reliable energies and an accurate description of the IR vibrational frequency of CO. Comparison with detailed, high-resolution experimental infrared reflection absorption spectroscopy data obtained for single crystal samples allows the assignment of the different CO vibrational bands observed on all three low-index ceria surfaces. Good agreement is achieved with the hybrid density functional theory approach with the HSE06 functional and with saturation coverage. It is shown that CO is very sensitive to the structure of cerium oxide surfaces and to the presence of oxygen vacancies. The combined theoretical-experimental approach offers new opportunities for a better characterization of ceria nanoparticles and for unraveling changes occurring during reactions involving CO at higher pressures.

Funder

European Union H2020 Marie Curie Grant

Deutsche Forschungsgemeinschaft

National Natural Foundation of China

MICINN Spain

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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