Switchable Polarization in an A-site Deficient Perovskite through Vacancy and Cation Engineering
Abstract
While defects are unavoidable in crystals and often detrimental to material performance, they can be a key ingredient for inducing functionalities when tailored. Here, we demonstrate that an A-site-deficient perovskite YTaO exhibits room-temperature ferroelectricity in a phase, enabled by ordered vacancies coupled with TaO octahedral rotations. Defect-ordered perovskites are frequently trapped in centrosymmetric incommensurate states due to competing structural instabilities; we circumvent this by favoring rotational over polar instability through compositional selection. Unlike canonical improper ferroelectrics that are \textit{ferrielectric}, the vanishing dipoles on vacancy layers in YTaO allow for a net ferroelectric alignment of local dipoles, resulting in enhanced polarization. Upon heating, YTaO transforms to a paraelectric incommensurate phase at 750 K, whose atomic arrangement mirrors the domain topology observed in hybrid improper ferroelectrics. Superspace analysis of the modulated phase reveals a route to improve room-temperature polarization, achieved through epitaxial strain, as confirmed by our lattice-dynamics calculations. This defect-ordering strategy should be generalizable to other improper ferroelectrics, including magnetoelectric multiferroics, providing a pathway to amplify otherwise limited macroscopic polarization.
Keywords
Cite
@article{arxiv.2511.01241,
title = {Switchable Polarization in an A-site Deficient Perovskite through Vacancy and Cation Engineering},
author = {Suguru Yoshida and Olivier Hernandez and Jinsuke Miyake and Kei Nakayama and Ryo Ishikawa and Hajime Hojo and Yuichi Ikuhara and Venkatraman Gopalan and Katsuhisa Tanaka and Koji Fujita},
journal= {arXiv preprint arXiv:2511.01241},
year = {2026}
}
Comments
11 pages, 10 figures