The interplay between activity and filament flexibility determines the emergent properties of active nematics
Abhijeet Joshi, Elias Putzig, Aparna Baskaran, Michael Hagan

TL;DR
This study uses large-scale simulations to show how filament flexibility and activity influence the properties of active nematics, highlighting the importance of activity-dependent material parameters.
Contribution
It introduces a particle-based model that explicitly includes filament semiflexibility and demonstrates how activity renormalizes the bend modulus affecting emergent behaviors.
Findings
Energy injection excites bend deformations, reducing the bend modulus.
Material parameters depend explicitly on activity in active nematics.
A systematic method to estimate material parameters from deformation and defect data.
Abstract
Active nematics are microscopically driven liquid crystals that exhibit dynamical steady states characterized by the creation and annihilation of topological defects. Motivated by experimental realizations of such systems made of biopolymer filaments and motor proteins, we describe a large-scale simulation study of a particle-based computational model that explicitly incorporates the semiflexibility of the biopolymers. We find that energy injected into the system at the particle scale preferentially excites bend deformations, renormalizing the filament bend modulus to smaller values. The emergent characteristics of the active nematic depend on activity and flexibility only through this activity-renormalized bend modulus, demonstrating that material parameters such as the Frank `constants' must explicitly depend on activity in a continuum hydrodynamic description of an active nematic.…
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Taxonomy
TopicsMicro and Nano Robotics · Advanced Materials and Mechanics · Diffusion and Search Dynamics
