A systematic DFT study of structure and electronic properties of titanium dioxide

Author:

Marzouk Asma1ORCID,Papavasileiou Konstantinos D.2ORCID,Peristeras Loukas D.2ORCID,Bezemer Leendert3ORCID,van Bavel Alexander P.4ORCID,Shenai Prathamesh M.5ORCID,Economou Ioannis G.1ORCID

Affiliation:

1. Chemical Engineering Program Texas A&M University at Qatar Doha Qatar

2. Molecular Thermodynamics and Modelling of Materials Laboratory National Center for Scientific Research “Demokritos”, Institute of Nanoscience and Nanotechnology Athens Greece

3. GTL and XTL Research Shell Global Solutions International BV Amsterdam The Netherlands

4. Next Generation Breakthrough Research Shell Global Solutions International BV Amsterdam The Netherlands

5. Computational Chemistry and Material Science, Shell India Markets Pvt. Ltd Shell India Markets Pvt. Ltd Banglore India

Abstract

AbstractDFT functionals are of paramount importance for an accurate electronic and structural description of transition metal systems. In this work, a systematic analysis using some well‐known and commonly used DFT functionals is performed. A comparison of the structural and energetic parameters calculated with the available experimental data is made in order to find the adequate functional for an accurate description of the TiO2 bulk and surface of both anatase and rutile structures. In the absence of experimental data on the surface energy, the theoretical predictions obtained using the high‐accuracy HSE06 functional were used as a reference to compare against the surface energy values calculated with the other DFT functionals. A clear improvement in the electronic description of both anatase and rutile was observed by introducing the Hubbard U correction term to PBE, PW91, and OptPBE functionals. The OptPBE‐U4 functional was found to offer a good compromise between accurately describing the structural and electronic properties of titania.

Funder

Qatar Shell Research and Technology Center

Shell Global Solutions International

Publisher

Wiley

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