Issue 9, 2024

Quorum sensing-induced transition from colloidal waves to Turing-like patterns in chemorepulsive active colloids

Abstract

The study of active systems, especially in the presence of a chemical background field, is garnering significant attention. Traditionally, the self-propelled velocity of active colloids was assumed to be constant, independent of the local density of colloids. In this work, we introduce a chemotactic active system that features quorum sensing (QS), wherein particles act as chemorepellents. Interestingly, these particles lose their activity in regions of high local particle density. Our findings reveal that QS leads to a transition from an oscillatory colloidal wave to a Turing-like pattern, with the observation of an intermediate state. With the variation of the sensing threshold, both the mean oscillation frequency of the system and the number of clusters exhibit non-monotonic dependence. Furthermore, the QS-induced pattern differs markedly from systems without QS, primarily due to the competitive interplay between diffusion and chemotaxis. The dynamics of this phenomenon are explained using a coarse-grained mean field model.

Graphical abstract: Quorum sensing-induced transition from colloidal waves to Turing-like patterns in chemorepulsive active colloids

Article information

Article type
Paper
Submitted
10 Oct 2023
Accepted
26 Jan 2024
First published
29 Jan 2024
This article is Open Access
Creative Commons BY license

Phys. Chem. Chem. Phys., 2024,26, 7783-7793

Quorum sensing-induced transition from colloidal waves to Turing-like patterns in chemorepulsive active colloids

J. Cao, J. Wu and Z. Hou, Phys. Chem. Chem. Phys., 2024, 26, 7783 DOI: 10.1039/D3CP04910H

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