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    Chirality Cannot Be Ferroic in Phase Transitions Leading to Enantiomorphic Space-Group Pairs

    F. Gómez-Ortiz1,*, S. Mamoudou Taganga1, Emma E. McCabe2, A. H. Romero3, and E. Bousquet1,†

    • *Contact author: fgomez@uliege.be
    • †Contact author: eric.bousquet@uliege.be

    Phys. Rev. Lett. 137, 036103 – Published 17 July, 2026

    DOI: https://doi.org/10.1103/ktz2-7yd5

    Abstract

    With growing interest in structural chirality in periodic solids, it has been suggested that chirality might constitute a new ferroic order parameter. In the work described, we demonstrate, by means of a formal group-theoretical proof and a systematic group-subgroup analysis, that achiral-to-chiral transitions that produce either member of an enantiomorphic pair cannot be driven by a Brillouin-zone-center (Γ-point) instability from a common achiral parent. We further substantiate this result by explicitly showing that none of the achiral parent space groups that admit symmetry-chiral phonon eigenvectors host them at the zone center. Given that a primary ferroic order parameter must, among other requirements, transform according to a zone-center irreducible representation, we conclude that phase transitions leading to enantiomorphic space groups cannot be classified as primary ferroic transitions. This predicts that any critical enhancement of fluctuations must occur at finite-q rather than as a divergence of a uniform macroscopic susceptibility.

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