Universal law for the dispersal of motile microorganisms in porous media

Fuente: arXiv
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Main Authors: Pietrangeli, T., Foffi, R., Stocker, R., Ybert, C., Cottin-Bizonne, C., Detcheverry, F.
Format: Preprint
Published: 2025
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author Pietrangeli, T.
Foffi, R.
Stocker, R.
Ybert, C.
Cottin-Bizonne, C.
Detcheverry, F.
author_facet Pietrangeli, T.
Foffi, R.
Stocker, R.
Ybert, C.
Cottin-Bizonne, C.
Detcheverry, F.
contents Dispersal is essential to the plethora of motile microorganisms living in porous environments, yet how it relates to movement patterns and pore space structure remains largely unknown. Here we investigate numerically the long-time dispersal of a run-and-tumble microorganism that remains trapped at solid surfaces and escapes from them by tumbling. We find that dispersal and mean run time are connected by a universal relation, that applies for a variety of porous microstructures and swimming strategies. We explain how this generic dependence originates in the invariance of the mean free path with respect to the movement pattern, and we discuss the optimal strategy that maximizes dispersal. Finally, we extend our approach to microorganisms moving along the surface. Our results provide a general framework to quantify dispersal that works across the vast diversity of movement patterns and porous media.
format Preprint
id arxiv_https___arxiv_org_abs_2503_03273
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Universal law for the dispersal of motile microorganisms in porous media
Pietrangeli, T.
Foffi, R.
Stocker, R.
Ybert, C.
Cottin-Bizonne, C.
Detcheverry, F.
Soft Condensed Matter
Statistical Mechanics
Dispersal is essential to the plethora of motile microorganisms living in porous environments, yet how it relates to movement patterns and pore space structure remains largely unknown. Here we investigate numerically the long-time dispersal of a run-and-tumble microorganism that remains trapped at solid surfaces and escapes from them by tumbling. We find that dispersal and mean run time are connected by a universal relation, that applies for a variety of porous microstructures and swimming strategies. We explain how this generic dependence originates in the invariance of the mean free path with respect to the movement pattern, and we discuss the optimal strategy that maximizes dispersal. Finally, we extend our approach to microorganisms moving along the surface. Our results provide a general framework to quantify dispersal that works across the vast diversity of movement patterns and porous media.
title Universal law for the dispersal of motile microorganisms in porous media
topic Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2503.03273