Multiferroic crossover in perovskite oxides
Leigh Weston, Xiangyuan Cui, Simon P. Ringer, and Catherine Stampfl

TL;DR
This study uses first-principles calculations to explore how high spin states in Co$^{3+}$ ions influence ferroelectricity and magnetism in BiCoO$_3$, revealing a strong coupling between magnetic and electric properties in this multiferroic perovskite.
Contribution
It demonstrates that unpaired electron spins can promote ferroelectricity in perovskites, and elucidates the role of Co$^{3+}$ high spin states in enhancing multiferroic behavior in BiCoO$_3$.
Findings
High spin Co$^{3+}$ enhances ferroelectric polarization.
Unpaired spins can drive ferroelectricity, contrary to previous beliefs.
Switching the spin state alters the ferroelectric polarization.
Abstract
Recently, the perovskite BiCoO has been shown experimentally to be isostructural with PbTiO, while simultaneously the Co ion has a high spin ground state with -type antiferromagnetic ordering. Using hybrid density functional calculations, we investigate the atomic, electronic and magnetic structure of BiCoO to elucidate the origin of the multiferroic state. To begin with, we perform a qualitative trend sudy of the role of electrons in affecting the tendency for perovskite materials to exhibit a ferroelectric distortion; this work initially explores a qualitative trend study in artificial cubic and tetragonal LaBO perovskites. We choose La as the A-cation so as to remove the effects of Bi hybridization. Through first-principles calculations of the LaBO series, where B is a cation from the -block, the trend study reveals that…
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