Locomotion of Active Polymerlike Worms in Porous Media
arXiv:2407.18805 · doi:10.1103/PhysRevLett.134.128303
Abstract
We investigate the locomotion of thin, living T. tubifex worms, which display active polymerlike behavior, within quasi-2D arrays of cylindrical pillars, examining varying spatial arrangements and densities. These active worms spread in crowded environments, with a dynamics dependent on both the concentration and arrangement of obstacles. In contrast to passive polymers, our results reveal that in disordered configurations, increasing the pillar density enhances the long-time diffusion of our active polymer-like worms, while we observe the opposite trend in ordered pillar arrays. We found that in disordered media, living worms reptate through available curvilinear tubes, whereas they become trapped within pores of ordered media. Intriguingly, we show that reducing the worm's activity significantly boosts its spread, enabling passive sorting of worms by activity level. Our experimental observations are corroborated through simulations of the tangentially driven polymer model with matched persistence length predicting the same trends.
6 pages including references, accompanied with 14 pages of supplementary materials including references
References in corpus (12)
- Anomalous transport in the crowded world of biological cells
- Bacterial hopping and trapping in porous media
- The physics of active polymers and filaments
- A Geometric Criterion for the Optimal Spreading of Active Polymers in Porous Media
- Structure and dynamics of a self-propelled semiflexible filament
- Dynamics of active filaments in porous media
- Conformation and dynamics of a self-avoiding active flexible polymer
- Effects of inertia on conformation and dynamics of tangentially-driven active filaments
- Burrowing dynamics of aquatic worms in soft sediments
- Enhanced Diffusion of a Needle in a Planar Course of Point Obstacles
- Active Dynamics of Linear Chains and Rings in Porous Media
- Tangentially Active Polymers in Cylindrical Channels