Chiral soft mode transition driven by strain in ferroelectric bubble domains

Abstract Chirality in solids is attracting growing attention as a potential ferroic order, yet virtually no paradigmatic example of a soft-mode achiral-to-chiral phase transition has been firmly established to date. Here we identify ferroelectric bubble domains as a model system that undergoes a strain-driven achiral-to-chiral transition exhibiting the hallmarks of spontaneous symmetry breaking. Using second-principles atomistic simulations, we uncover chiral phonon modes in ferroelectric/dielectric superlattices that soften under epitaxial strain following textbook soft-mode behaviour. The transition is accompanied by a change in topological character, highlighting an interplay between chirality and topology in these systems. This work provides a concrete step towards establishing chirality as a genuine ferroic order in solids.

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Publication Details

Journal
npj Computational Materials
Published
2026-09-05
DOI
https://doi.org/10.1038/s41524-026-02311-7
Primary Topic
Ferroelectric and Piezoelectric Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Chiral soft mode transition driven by strain in ferroelectric bubble domains

Hugo Aramberri, Urmimala Dey, Natalya S. Fedorova, Jorge Íñiguez-González
npj Computational Materials
Ferroelectric and Piezoelectric Materials
article

Chiral soft mode transition driven by strain in ferroelectric bubble domains

Hugo Aramberri, Urmimala Dey, Natalya S. Fedorova, Jorge Íñiguez-González
article en

Abstract

Abstract Chirality in solids is attracting growing attention as a potential ferroic order, yet virtually no paradigmatic example of a soft-mode achiral-to-chiral phase transition has been firmly established to date. Here we identify ferroelectric bubble domains as a model system that undergoes a strain-driven achiral-to-chiral transition exhibiting the hallmarks of spontaneous symmetry breaking. Using second-principles atomistic simulations, we uncover chiral phonon modes in ferroelectric/dielectric superlattices that soften under epitaxial strain following textbook soft-mode behaviour. The transition is accompanied by a change in topological character, highlighting an interplay between chirality and topology in these systems. This work provides a concrete step towards establishing chirality as a genuine ferroic order in solids.

npj Computational Materials
University of Luxembourg (LU), Luxembourg Institute of Science and Technology (LU)
Fonds National de la Recherche Luxembourg
Openalex Percentile: Top 100%
Ferroelectric and Piezoelectric Materials
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Chiral soft mode transition driven by strain in ferroelectric bubble domains — Hugo Aramberri, Urmimala Dey, et al. · npj Computational Materials (2026) | TGRS Research Map | TGRS