Shaping boundaries to control and transport topological defects in colloidal nematic liquid crystals

Fuente: arXiv
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Main Authors: Campos-Villalobos, Gerardo, Matias, André F. V., Jull, Ethan I. L., Tran, Lisa, Dijkstra, Marjolein
Format: Preprint
Published: 2025
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_version_ 1866913170212257792
author Campos-Villalobos, Gerardo
Matias, André F. V.
Jull, Ethan I. L.
Tran, Lisa
Dijkstra, Marjolein
author_facet Campos-Villalobos, Gerardo
Matias, André F. V.
Jull, Ethan I. L.
Tran, Lisa
Dijkstra, Marjolein
contents Anisotropic rod-like particles form liquid crystalline phases with varying degrees of orientational and translational order. When confined geometrically, these phases can give rise to topological defects, which can be selected and controlled by tuning how the rods align near boundaries, known as anchoring. While anchoring in molecular liquid crystals can be controlled through surface functionalization, this approach is not easily applicable to microscale colloidal systems, which have so far been limited to planar anchoring. Here, using particle-based simulations, Landau-de Gennes theory, and experiments on colloidal rods, we demonstrate that topographical patterning of the boundary can effectively control the anchoring type and, in turn, the defect state in two-dimensional confined nematics. Building on this, we numerically predict that dynamically shape-shifting the boundaries can transform and transport topological defects.
format Preprint
id arxiv_https___arxiv_org_abs_2506_18664
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Shaping boundaries to control and transport topological defects in colloidal nematic liquid crystals
Campos-Villalobos, Gerardo
Matias, André F. V.
Jull, Ethan I. L.
Tran, Lisa
Dijkstra, Marjolein
Soft Condensed Matter
Anisotropic rod-like particles form liquid crystalline phases with varying degrees of orientational and translational order. When confined geometrically, these phases can give rise to topological defects, which can be selected and controlled by tuning how the rods align near boundaries, known as anchoring. While anchoring in molecular liquid crystals can be controlled through surface functionalization, this approach is not easily applicable to microscale colloidal systems, which have so far been limited to planar anchoring. Here, using particle-based simulations, Landau-de Gennes theory, and experiments on colloidal rods, we demonstrate that topographical patterning of the boundary can effectively control the anchoring type and, in turn, the defect state in two-dimensional confined nematics. Building on this, we numerically predict that dynamically shape-shifting the boundaries can transform and transport topological defects.
title Shaping boundaries to control and transport topological defects in colloidal nematic liquid crystals
topic Soft Condensed Matter
url https://arxiv.org/abs/2506.18664