Disorder-induced persistent random motion and trapping of microswimmers

Fuente: arXiv
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Hauptverfasser: Residori, Mirko, Aland, Sebastian, Kurzthaler, Christina
Format: Preprint
Veröffentlicht: 2026
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author Residori, Mirko
Aland, Sebastian
Kurzthaler, Christina
author_facet Residori, Mirko
Aland, Sebastian
Kurzthaler, Christina
contents Microorganisms ofter move in confined, disordered environments, where hydrodynamic couplings can modify their transport behavior. Using extensive finite-element simulations, we investigate the dynamics of microswimmers -- modeled as squirmers -- in two-dimensional disordered porous media by resolving the full hydrodynamic interactions. We reveal that the deterministic coupling between activity, hydrodynamics, and disorder is sufficient to generate effective diffusive transport. Strong pushers and pullers become localised in the porous medium either by trapping at corners or dynamic trapping, depending on swimmer type and obstacle packing fraction. Squirmers can escape from dynamic traps, leading to a prominent ``hopping-and--trapping'' dynamics. Strikingly, we find a pusher-puller asymmetry in the trapping probability that can be reversed by short-range swimmer-obstacle interactions, highlighting the sensitivity of transport to near-field effects.
format Preprint
id arxiv_https___arxiv_org_abs_2603_21285
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Disorder-induced persistent random motion and trapping of microswimmers
Residori, Mirko
Aland, Sebastian
Kurzthaler, Christina
Soft Condensed Matter
Biological Physics
Microorganisms ofter move in confined, disordered environments, where hydrodynamic couplings can modify their transport behavior. Using extensive finite-element simulations, we investigate the dynamics of microswimmers -- modeled as squirmers -- in two-dimensional disordered porous media by resolving the full hydrodynamic interactions. We reveal that the deterministic coupling between activity, hydrodynamics, and disorder is sufficient to generate effective diffusive transport. Strong pushers and pullers become localised in the porous medium either by trapping at corners or dynamic trapping, depending on swimmer type and obstacle packing fraction. Squirmers can escape from dynamic traps, leading to a prominent ``hopping-and--trapping'' dynamics. Strikingly, we find a pusher-puller asymmetry in the trapping probability that can be reversed by short-range swimmer-obstacle interactions, highlighting the sensitivity of transport to near-field effects.
title Disorder-induced persistent random motion and trapping of microswimmers
topic Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2603.21285