Turbulent-like flows in quasi two-dimensional dense suspensions of motile colloids

Abstract

Dense bacterial suspensions exhibit turbulent-like flows at low Reynolds numbers, driven by the activity of the microswimmers. In this study, we develop a model system to examine these dynamics using motile colloids that mimic bacterial locomotion. The colloids are powered by the Quincke instability, which causes them to spontaneously roll in a random-walk pattern when exposed to a square-wave electric field. We experimentally investigate the flow dynamics in dense suspensions of these Quincke random walkers under quasi two-dimensional conditions, where the particle size is comparable to the gap between the electrodes. The results suggest a scaling regime in the energy spectrum ∼k−4 at high wavenumbers, observed consistently across activity levels and particle concentrations. We observe that velocity time correlations decay within a single period of the square-wave field, yet an anti-correlation appears between successive field applications, indicative of a dynamic structural memory of the ensemble.

Graphical abstract: Turbulent-like flows in quasi two-dimensional dense suspensions of motile colloids

Supplementary files

Article information

Article type
Paper
Submitted
22 ២ 2025
Accepted
01 ៧ 2025
First published
02 ៧ 2025
This article is Open Access
Creative Commons BY license

Soft Matter, 2025, Advance Article

Turbulent-like flows in quasi two-dimensional dense suspensions of motile colloids

R. Luo, A. Snezhko and P. M. Vlahovska, Soft Matter, 2025, Advance Article , DOI: 10.1039/D5SM00192G

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