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Main Authors: Alaerts, Louis, Schimpf, Jesse, Li, Xinyan, Zheng, Jiongzhi, Banyas, Ella, Neaton, Jeffrey B., Griffin, Sinéad M., Han, Yimo, Martin, Lane W., Hautier, Geoffroy
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2601.04916
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author Alaerts, Louis
Schimpf, Jesse
Li, Xinyan
Zheng, Jiongzhi
Banyas, Ella
Neaton, Jeffrey B.
Griffin, Sinéad M.
Han, Yimo
Martin, Lane W.
Hautier, Geoffroy
author_facet Alaerts, Louis
Schimpf, Jesse
Li, Xinyan
Zheng, Jiongzhi
Banyas, Ella
Neaton, Jeffrey B.
Griffin, Sinéad M.
Han, Yimo
Martin, Lane W.
Hautier, Geoffroy
contents Antiferroelectrics are antipolar materials which possess an electric field-induced phase transition to a polar, ferroelectric phase and offer significant potential for sensing/actuation and energy-storage applications. Known antiferroelectrics are relatively scarce and mainly based on a limited set of perovskite materials and their alloys (e.g., PbZrO$_3$, AgNbO$_3$, NaNbO$_3$). Here, a new family of lead-free, weberite-type antiferroelectrics, identified through a large-scale, first-principles computational search is introduced. The screening methodology, which connects lattice dynamics to antipolar distortions, predicted that La$_3$NbO$_7$ could exhibit antiferroelectricity. We confirm the prediction through the synthesis and characterization of epitaxial La$_3$NbO$_7$ thin films, which display the signature double hysteresis loops of an antiferroelectric material as well as clear evidence of an antipolar ground state structure from transmission electron microscopy. The antiferroelectricity in La$_3$NbO$_7$ is simpler than most known antiferroelectrics and can be explained by a Kittel-type mechanism involving the movement of niobium atoms in an oxygen octahedron through a single phonon mode which results in a smaller change in the volume during the field-induced phase transition. Additionally, it is found that La$_3$NbO$_7$ combines a high threshold field with a high breakdown field ($\approx$ 6MV/cm) - which opens up opportunities for energy-storage applications. This new weberite-type family of materials offers many opportunities to tune electrical and temperature response especially through substitutions on the rare-earth site. Ultimately, this work demonstrates a successful data-driven theory-to-experiment discovery of an entirely new family of antiferroelectrics and provides a blueprint for the future design of ferroic materials.
format Preprint
id arxiv_https___arxiv_org_abs_2601_04916
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Discovery of a new weberite-type antiferroelectric: La3NbO7
Alaerts, Louis
Schimpf, Jesse
Li, Xinyan
Zheng, Jiongzhi
Banyas, Ella
Neaton, Jeffrey B.
Griffin, Sinéad M.
Han, Yimo
Martin, Lane W.
Hautier, Geoffroy
Materials Science
Antiferroelectrics are antipolar materials which possess an electric field-induced phase transition to a polar, ferroelectric phase and offer significant potential for sensing/actuation and energy-storage applications. Known antiferroelectrics are relatively scarce and mainly based on a limited set of perovskite materials and their alloys (e.g., PbZrO$_3$, AgNbO$_3$, NaNbO$_3$). Here, a new family of lead-free, weberite-type antiferroelectrics, identified through a large-scale, first-principles computational search is introduced. The screening methodology, which connects lattice dynamics to antipolar distortions, predicted that La$_3$NbO$_7$ could exhibit antiferroelectricity. We confirm the prediction through the synthesis and characterization of epitaxial La$_3$NbO$_7$ thin films, which display the signature double hysteresis loops of an antiferroelectric material as well as clear evidence of an antipolar ground state structure from transmission electron microscopy. The antiferroelectricity in La$_3$NbO$_7$ is simpler than most known antiferroelectrics and can be explained by a Kittel-type mechanism involving the movement of niobium atoms in an oxygen octahedron through a single phonon mode which results in a smaller change in the volume during the field-induced phase transition. Additionally, it is found that La$_3$NbO$_7$ combines a high threshold field with a high breakdown field ($\approx$ 6MV/cm) - which opens up opportunities for energy-storage applications. This new weberite-type family of materials offers many opportunities to tune electrical and temperature response especially through substitutions on the rare-earth site. Ultimately, this work demonstrates a successful data-driven theory-to-experiment discovery of an entirely new family of antiferroelectrics and provides a blueprint for the future design of ferroic materials.
title Discovery of a new weberite-type antiferroelectric: La3NbO7
topic Materials Science
url https://arxiv.org/abs/2601.04916