Abstract
Defects in CaHfO3 are investigated by ab initio calculations based on density functional theory. Pristine and anion-deficient CaHfO 3 are found to be insulating, whereas cation-deficient CaHfO 3 is hole-doped. The formation energies of neutral and charged cation and anion vacancies are evaluated to determine the stability in different chemical environments. Moreover, the energies of the partial and full Schottky defect reactions are computed. We show that clustering of anion vacancies in the HfO layers is energetically favorable for sufficiently high defect concentrations and results in metallicity. © 2014 EPLA.
Cite
CITATION STYLE
Alay-E-Abbas, S. M., Nazir, S., Mun Wong, K., Shaukat, A., & Schwingenschlögl, U. (2014). Chemical stability and defect formation in CaHfO3. EPL, 106(2). https://doi.org/10.1209/0295-5075/106/27003
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.