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Updated: Sep 15, 2026

Forming, Confining, and Observing Microtubule-Based Active Nematics
Published on: January 13, 2023
Ordering in confined two-dimensional nematic systems: mesoscopic simulations based on different mean-field potentials
Humberto Híjar1, Apala Majumdar2
1Department of Physics, Complex Systems, Universidad Autónoma Metropolitana-Iztapalapa, Mexico City, 09340, Mexico. hijar@xanum.uam.mx.
Abstract:
We use nematic Multi-particle Collision Dynamics (N-MPCD) simulations to study confined nematic liquid crystals in square domains, with three distinct mean-field potentials: the classical Maier-Saupe and Marrucci-Greco models, and a more recent model due to Ilg, Karlin, and Öttinger. These potentials incorporate diverse physical features, including spatial gradients and nonlinear dependencies on the order parameter, to describe nematic ordering at mesoscopic scales. We derive coarse-grained equations from a Fokker-Planck description with tensorial closures, and analyse the emergence of order as a function of interaction strength, U, in two dimensions (2D). We estimate the critical interaction strength for the onset of nematic ordering (also interpreted as the isotropic-nematic transition in 2D) and the nematic coherence length in 2D, for the three different mean-field models. This enables a rigorous correspondence between the N-MPCD parameters (the system size R and U) and the continuum Landau-de Gennes theoretical parameters. We systematically study equilibrium and metastable configurations, including relaxation pathways to stable equilibria, on square domains with tangent boundary conditions, for all three mean-field potentials. Our results confirm universal equilibrium and metastable configurations for all three mean-field potentials. Our results also suggest that the N-MPCD predictions are consistent with the continuum Landau-de Gennes predictions, regardless of the choice of the underlying mean-field potential and approximations, for large R and large U.
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