An insight into the properties of ATiO3 (A=Ti,Sr) materials for photovoltaic applications
Lynet Allan, Robinson Musembi, and Julius Mwabora

TL;DR
This study uses density functional theory to analyze the structural, electronic, elastic, and optical properties of ATiO3 (A=Ti,Sr) materials, highlighting their potential for photovoltaic applications due to their UV-Vis absorption characteristics.
Contribution
The paper provides a comprehensive ab initio analysis of ATiO3 materials, including effects of spin-orbit coupling and Hubbard U, revealing their suitability for photovoltaic use.
Findings
Ti2O3 and SrTiO3 have suitable bandgaps for photovoltaics.
Hubbard U increases bandgap and optical absorption.
Materials are mechanically stable at zero pressure.
Abstract
One of the most active research areas in the world is the search for effective materials for use in the fields of optoelectronics and photovoltaics. The potential of materials like ATiO3 (A=Ti,Sr) is yet largely untapped. Ab initio studies based on density functional theory (DFT) have been used to comprehensively explore the structural, electronic, elastic, and optical properties of Ti2O3 and SrTiO3. In this study, the ground state properties were computed with spin-orbit coupling (SOC), without spin-orbit coupling, and with the inclusion of Hubbard U parameter. The electronic bandgaps of Ti2O3 have been found to be 0.059 eV without SOC, 0.131 eV with SOC, and 1.665 eV with Hubbard U. Electronic bandgaps of 1.612 eV, 1.761 eV, and 2.769 eV have been obtained for SrTiO3, respectively, without SOC, with SOC, and with Hubbard U. In every single case, it has been found that Ti-4d orbitals…
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Taxonomy
TopicsElectronic and Structural Properties of Oxides · Machine Learning in Materials Science · Chalcogenide Semiconductor Thin Films
