Oxygen vacancy formation energies in PbTiO$_3$/SrTiO$_3$ superlattice
Lipeng Zhang, Isaac Bredeson, Axiel Ya\"el Birenbaum, Paul R. C. Kent,, Valentino R. Cooper, P. Ganesh, Haixuan Xu

TL;DR
This study uses first principles calculations to analyze oxygen vacancy formation energies in PbTiO$_3$/SrTiO$_3$ superlattices, revealing layer-dependent variations influenced by ferroelectricity, interfaces, and octahedral rotations.
Contribution
It provides detailed insights into how ferroelectric phases, interfaces, and octahedral rotations affect oxygen vacancy formation energies in perovskite superlattices, which was not previously well understood.
Findings
Formation energies are higher in ferroelectric phases.
Interfaces exhibit different vacancy formation energies driven by mode coupling.
Octahedral rotations significantly alter vacancy formation energies.
Abstract
The defect stability in a prototypical perovskite oxide superlattice consisting of SrTiO and PbTiO (STO/PTO) is determined using first principles density functional theory calculations. Specifically, the oxygen vacancy formation energies E in the paraelectric and ferroelectric phases of a superlattice with four atomic layers of STO and four layers of PTO (4STO/4PTO) are determined and compared. The effects of charge state, octahedral rotation, polarization, and interfaces on the E are examined. The formation energies vary layer-by-layer in the superlattices, with E being higher in the ferroelectric phase than that in the paraelectric phase. The two interfaces constructed in these oxide superlattices, which are symmetrically equivalent in the paraelectric systems, exhibit very different formation energies in the ferroelectric superlattices and this can be seen to be…
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