Related Experiment Video
Updated: Aug 14, 2026

Tuning Oxide Properties by Oxygen Vacancy Control During Growth and Annealing
Published on: June 9, 2023
Why Hole Polaron Formation on Oxygen Is Limiting the Fermi Level in Fe Acceptor-Doped BaTiO3 under Oxidizing
Mohammad Amirabbasi1, Emre Erdem2,3, Lorenzo Villa1
1Institute of Materials Science, Materials Modelling, Technical University of Darmstadt, Otto-Berndt-Straße 3, 64287Darmstadt, Germany.
Abstract:
Oxidizing Fe-doped BaTiO3 is commonly expected to convert substitutional Fe3+ acceptors into formal Fe4+ centers. However, the experimentally accessible picture based on electron paramagnetic resonance (EPR) is dominated by Fe3+-related signatures, while Fe4+ is not a straightforward observable. Here, we show that this apparent discrepancy reflects the preferred location of the oxidizing hole: not on Fe but on oxygen. Using density functional theory with occupation matrix control and a piecewise-linearity-based Hubbard correction (DFT + U) for O 2p states, we find that an oxygen-centered hole polaron is forming a Fe3+-O- complex that is lower in energy than the formal Fe4+ configuration. Our results identify ligand hole formation as a favorable charge-compensation mechanism in oxidized Fe-doped BaTiO3 and provide an explanation for the predominance of Fe3+-based centers in spectroscopy. More broadly, they show how oxygen polarons can limit Fermi level shifts and control the electronic response of acceptor-doped ferroelectric perovskites.
More Related Videos
08:00Chemical Synthesis of Porous Barium Titanate Thin Film and Thermal Stabilization of Ferroelectric Phase by Porosity-Induced Strain
Published on: March 27, 2018
09:34Synthesis and Characterization of Fe-doped Aluminosilicate Nanotubes with Enhanced Electron Conductive Properties
Published on: November 15, 2016
Related Concept Videos
Fermi Level
At absolute zero temperature, electrons fill all energy states up to the Fermi level, leaving upper states empty. As the temperature rises,...
Crystal Field Theory - Octahedral Complexes
To explain the observed behavior of transition metal complexes (such as colors), a model involving electrostatic interactions between the electrons from the ligands and the electrons in the unhybridized d orbitals of the central metal atom has been developed. This electrostatic model is crystal field theory (CFT). It helps to understand, interpret, and predict the colors, magnetic behavior, and some structures of coordination compounds of transition metals.
CFT focuses on...
Valence Bond Theory
Hydroboration-Oxidation of Alkenes
Imperfections in Crystal Structure: Stoichiometric Point Defects
Fermi Level Dynamics
Electron affinity in semiconductors refers to the energy gap between the minimum of its conduction band and the vacuum level and it is a critical parameter in determining how easily a semiconductor can accept additional electrons.
The work...