The mechanics of disclination emergence in 3D active nematics

Fuente: arXiv
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Main Authors: Ma, Yingyou, Amey, Christopher, Baskaran, Aparna, Hagan, Michael F.
Format: Preprint
Published: 2025
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author Ma, Yingyou
Amey, Christopher
Baskaran, Aparna
Hagan, Michael F.
author_facet Ma, Yingyou
Amey, Christopher
Baskaran, Aparna
Hagan, Michael F.
contents The spontaneous creation of disclinations is a defining characteristic of active nematics, which is rarely observed in equilibrium systems or other active matter systems. Thus, understanding the mechanics of disclinations is crucial for developing reliable continuum theories and practical applications. In this work, we explore this intrinsic mechanics by performing large-scale 3D simulations of a particle-based model of active semiflexible filaments. We investigate the effects of filament stiffness and activity on the collective behavior of active nematics. Analysis of the steady state and the topological properties of initial disclination loops reveals that the system is governed by a single parameter, an activity-dependent effective stiffness. Then, we develop a method to visualize director field orientations in a physically transparent manner during the formation of disclination loops. Based on this, we establish a unified theory for the mechanics of disclination emergence, across the range of bend and twist. This disclination analysis framework can also be applied to diverse other 3D liquid crystal systems.
format Preprint
id arxiv_https___arxiv_org_abs_2506_22785
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The mechanics of disclination emergence in 3D active nematics
Ma, Yingyou
Amey, Christopher
Baskaran, Aparna
Hagan, Michael F.
Soft Condensed Matter
The spontaneous creation of disclinations is a defining characteristic of active nematics, which is rarely observed in equilibrium systems or other active matter systems. Thus, understanding the mechanics of disclinations is crucial for developing reliable continuum theories and practical applications. In this work, we explore this intrinsic mechanics by performing large-scale 3D simulations of a particle-based model of active semiflexible filaments. We investigate the effects of filament stiffness and activity on the collective behavior of active nematics. Analysis of the steady state and the topological properties of initial disclination loops reveals that the system is governed by a single parameter, an activity-dependent effective stiffness. Then, we develop a method to visualize director field orientations in a physically transparent manner during the formation of disclination loops. Based on this, we establish a unified theory for the mechanics of disclination emergence, across the range of bend and twist. This disclination analysis framework can also be applied to diverse other 3D liquid crystal systems.
title The mechanics of disclination emergence in 3D active nematics
topic Soft Condensed Matter
url https://arxiv.org/abs/2506.22785