Issue 36, 2024

Entangled nematic disclinations using multi-particle collision dynamics

Abstract

Colloids dispersed in nematic liquid crystals form topological composites in which colloid-associated defects mediate interactions while adhering to fundamental topological constraints. Better realising the promise of such materials requires numerical methods that model nematic inclusions in dynamic and complex scenarios. We employ a mesoscale approach for simulating colloids as mobile surfaces embedded in a fluctuating nematohydrodynamic medium to study the kinetics of colloidal entanglement. In addition to reproducing far-field interactions, topological properties of disclination loops are resolved to reveal their metastable states and topological transitions during relaxation towards ground state. The intrinsic hydrodynamic fluctuations distinguish formerly unexplored far-from-equilibrium disclination states, including configurations with localised positive winding profiles. The adaptability and precision of this numerical approach offers promising avenues for studying the dynamics of colloids and topological defects in designed and out-of-equilibrium situations.

Graphical abstract: Entangled nematic disclinations using multi-particle collision dynamics

Article information

Article type
Paper
Submitted
14 Apr 2024
Accepted
19 Aug 2024
First published
22 Aug 2024
This article is Open Access
Creative Commons BY license

Soft Matter, 2024,20, 7157-7173

Entangled nematic disclinations using multi-particle collision dynamics

L. C. Head, Y. A. G. Fosado, D. Marenduzzo and T. N. Shendruk, Soft Matter, 2024, 20, 7157 DOI: 10.1039/D4SM00436A

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