Morphogenesis and topological evolution of a frustrated nematic liquid crystal under confinement

L Lilian Magermans (Laboratoire de Physique de la Matière Condensée—CNRS, Ecole Polytechnique, Institut Polytechnique de Paris) J Jeongmo Kim (Laboratoire de Physique de la Matière Condensée—CNRS, Ecole Polytechnique, Institut Polytechnique de Paris) R Reinaldo Chacon (Laboratoire Interdisciplinaire Carnot de Bourgogne—CNRS, Université de Bourgogne) A Aymeric Leray (Laboratoire Interdisciplinaire Carnot de Bourgogne—CNRS, Université de Bourgogne) T Timothy J. Atherton (Department of Physics, Tufts University) T Thierry Gacoin (Laboratoire de Physique de la Matière Condensée—CNRS, Ecole Polytechnique, Institut Polytechnique de Paris) J Jongwook Kim (Laboratoire de Physique de la Matière Condensée—CNRS, Ecole Polytechnique, Institut Polytechnique de Paris)

Abstract

Liquid crystals (LC) represent topological soft matter that spontaneously form assemblies of constituents and mesoscale textures to minimize free energy. Depending on boundary conditions, they exhibit transformable topological defects, whose study provides fundamental insights applicable to a wide array of disciplines. However, their three-dimensional (3D) structures and dynamics remain largely unexplored due to the subdiffraction limit length scales and submillisecond time scales characteristic of conventional molecular LCs. Here, we report a morphogenesis from conventional nematic tactoids to a unique flower-shaped morphology using a colloidal LC composed of Eu 3+ -doped LaPO 4 nanorods. We demonstrate 3D orientational tomography based on polarized photoluminescence spectroscopy of the Eu 3+ dopants, revealing dramatic topological and topographical modulations. We find that this morphogenesis is driven by a theoretically unexpected vertical anchoring of the nanorods on the substrate, which exerts conflicting boundary conditions and leads to a competition between elastic energy and relatively weak surface tension. Our results provide valuable insights into how energy balance in topological matter can be modulated by tuning physicochemical properties of its building blocks.

Article Details

Volume / Issue Vol. 123, Issue 27
Published July 07, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (7)

L

Lilian Magermans

Laboratoire de Physique de la Matière Condensée—CNRS, Ecole Polytechnique, Institut Polytechnique de Paris

J

Jeongmo Kim

Laboratoire de Physique de la Matière Condensée—CNRS, Ecole Polytechnique, Institut Polytechnique de Paris

R

Reinaldo Chacon

Laboratoire Interdisciplinaire Carnot de Bourgogne—CNRS, Université de Bourgogne

A

Aymeric Leray

Laboratoire Interdisciplinaire Carnot de Bourgogne—CNRS, Université de Bourgogne

T

Timothy J. Atherton

Department of Physics, Tufts University

T

Thierry Gacoin

Laboratoire de Physique de la Matière Condensée—CNRS, Ecole Polytechnique, Institut Polytechnique de Paris

J

Jongwook Kim

Laboratoire de Physique de la Matière Condensée—CNRS, Ecole Polytechnique, Institut Polytechnique de Paris