Collective Dynamics in Active Polar Polymer Assemblies

Fuente: arXiv
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Main Authors: Vahid, Hossein, Sommer, Jens-Uwe, Sharma, Abhinav
Format: Preprint
Published: 2025
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author Vahid, Hossein
Sommer, Jens-Uwe
Sharma, Abhinav
author_facet Vahid, Hossein
Sommer, Jens-Uwe
Sharma, Abhinav
contents Tangentially driven active polymers (TDAPs), model systems for motor-driven filaments, have been extensively studied in uniform activity fields. Here, we show that an activity gradient breaks fore-aft symmetry, generating net body forces that steer dimers, asters, and larger assemblies toward high-activity regions. Including temporal stochasticity softens the chains, allowing them to bend and wind around other filaments. Once several contacts are established, steric interlocking arrests relative motion and stabilizes the assembly into a hierarchically entangled cluster. These clusters persist for times far exceeding single-chain relaxation and do not appear under deterministic, temporally constant activity. Remarkably, such activity-induced gelation occurs even at polymer concentrations substantially lower than those typically required for passive chains. Our results reveal a new mechanism for activity-induced aggregation, providing new strategies for designing autonomous and reconfigurable microfluidic systems.
format Preprint
id arxiv_https___arxiv_org_abs_2503_11396
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Collective Dynamics in Active Polar Polymer Assemblies
Vahid, Hossein
Sommer, Jens-Uwe
Sharma, Abhinav
Soft Condensed Matter
Biological Physics
Tangentially driven active polymers (TDAPs), model systems for motor-driven filaments, have been extensively studied in uniform activity fields. Here, we show that an activity gradient breaks fore-aft symmetry, generating net body forces that steer dimers, asters, and larger assemblies toward high-activity regions. Including temporal stochasticity softens the chains, allowing them to bend and wind around other filaments. Once several contacts are established, steric interlocking arrests relative motion and stabilizes the assembly into a hierarchically entangled cluster. These clusters persist for times far exceeding single-chain relaxation and do not appear under deterministic, temporally constant activity. Remarkably, such activity-induced gelation occurs even at polymer concentrations substantially lower than those typically required for passive chains. Our results reveal a new mechanism for activity-induced aggregation, providing new strategies for designing autonomous and reconfigurable microfluidic systems.
title Collective Dynamics in Active Polar Polymer Assemblies
topic Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2503.11396