Giant activity-induced elasticity in entangled polymer solutions

D Davide Breoni (Department of Physics, Università di Trento 1 , Via Sommarive 14, I-38123 Trento,) C Christina Kurzthaler B Benno Liebchen (Department of Physics, Technische Universität Darmstadt, Institute of Condensed Matter Physics) H Hartmut Löwen (Institut für Theoretische Physik II: Weiche Materie) S Suvendu Mandal

Abstract

Abstract One of the key achievements of equilibrium polymer physics is the prediction of scaling laws governing the viscoelastic properties of entangled polymer systems, validated in both natural polymers, such as DNA, and synthetic polymers, including polyethylene, which form materials like plastics. Recently, focus has shifted to active polymers systems composed of motile units driven far from equilibrium, such as California blackworms, self-propelled biopolymers, and soft robotic grippers. Despite their growing importance, we do not yet understand their viscoelastic properties and universal scaling laws. Here, we use Brownian dynamics simulations to investigate the viscoelastic properties of highly-entangled, flexible self-propelled polymers. Our results demonstrate that activity enhances the elasticity by orders of magnitude due to the emergence of grip forces at entanglement points, leading to its scaling with polymer length ∼ L. Furthermore, activity fluidizes the suspension, with the long-time viscosity scaling as ∼ L 2, compared to ∼ L 3 in passive systems. These insights open new avenues for designing activity-responsive polymeric materials.

Article Details

Volume / Issue Vol. 16, Issue 1
Published June 12, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (5)

D

Davide Breoni

Department of Physics, Università di Trento 1 , Via Sommarive 14, I-38123 Trento,

C

Christina Kurzthaler

B

Benno Liebchen

Department of Physics, Technische Universität Darmstadt, Institute of Condensed Matter Physics

H

Hartmut Löwen

Institut für Theoretische Physik II: Weiche Materie

S

Suvendu Mandal