Karaca Ertuğrul, Errandonea Daniel
Sakarya University, Faculty of Sciences, Department of Physics, 54050, Sakarya, Turkey.
School of Physics, Engineering & Technology, University of York, York YO10 5DD, UK.
Dalton Trans. 2025 Sep 23;54(37):14199-14213. doi: 10.1039/d5dt01643f.
The impact of external pressure on the characteristics of SrTeO has been thoroughly examined using density-functional theory calculations up to 100 GPa. It has been predicted that SrTeO undergoes three phase transitions in the pressure range covered by this study. A first transition occurs at 2.5 GPa from the ambient-pressure orthorhombic structure (space group ) to another orthorhombic structure described by space group . A second transition occurs at 7 GPa to a monoclinic structure described by space group 2/ and a third transition occurs at 80 GPa to another monoclinic structure described by space group 2/. The phase transitions involve drastic changes in the atomic coordination of Sr and Te atoms. Additionally, we found that structural changes make the band-gap energy to rapidly decrease with pressure and drive metallization at 80 GPa. Moreover, we characterized the phonons and determined the compressibility of the different phases. We found that the low-pressure phase of SrTeO exhibits a bulk modulus of 73.3(8) GPa. However, the bulk modulus is enhanced following the observed structural sequence, reaching a value of 175(6) GPa in the high-pressure phase found beyond 80 GPa. Finally, our study indicates that superconductivity is not induced by pressure in the metallic phase. Our findings provide fundamental insights into the high-pressure behavior of SrTeO.