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Influence of the Hubbard U Correction on the Electronic Properties and Chemical Bands of the Cubic (m3¯m) Phase of SrTiO Using GGA/PBE and LDA/CA-PZ Approximations.

作者信息

Derkaoui Issam, Achehboune Mohamed, Eglitis Roberts I, Popov Anatoli I, Boukhoubza Issam, Basyooni-M Kabatas Mohamed A, Rezzouk Abdellah

机构信息

Laboratory of Solid State Physics, Faculty of Sciences Dhar el Mahraz, University Sidi Mohammed Ben Abdellah, P.O. Box 1796, Atlas Fez 30 000, Morocco.

Laboratoire de Physique des Solides, Namur Institute of Structured Matter, University of Namur, Rue de Bruxelles 61, 5000 Namur, Belgium.

出版信息

Molecules. 2024 Jun 28;29(13):3081. doi: 10.3390/molecules29133081.

Abstract

By using DFT simulations employing the GGA/PBE and LDA/CA-PZ approximations, the effects of the Hubbard U correction on the crystal structure, electronic properties, and chemical bands of the cubic phase (m3¯m) of STO were investigated. Our findings showed that the cubic phase (m3¯m) STO's band gaps and lattice parameters/volume are in reasonably good accordance with the experimental data, supporting the accuracy of our model. By applying the DFT + U method, we were able to obtain band gaps that were in reasonably good agreement with the most widely used experimental band gaps of the cubic (m3¯m) phase of STO, which are 3.20 eV, 3.24 eV, and 3.25 eV. This proves that the Hubbard U correction can overcome the underestimation of the band gaps induced by both GGA/PBE and LDA/CA-PZ approximations. On the other hand, the Sr-O and Ti-O bindings appear predominantly ionic and covalent, respectively, based on the effective valence charges, electron density distribution, and partial density of states analyses. In an attempt to enhance the performance of STO for new applications, these results might also be utilized as theoretical guidance, benefitting from our precise predicted values of the gap energies of the cubic phase (m3¯m).

摘要
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc73/11243698/e0cc99431fd3/molecules-29-03081-g001.jpg

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