Emergence of Order in Chemically Active Droplets: Temporal Dynamics and Collective Behavior
Abstract
Collective behaviors such as swarming, chemical signaling, and clustering are fundamental to biological microorganisms, enabling hierarchical colony formation, coordinated motion, and enhanced nutrient accessibility crucial for their survival. Over the past few decades, extensive research has been dedicated to unraveling the mechanisms underlying these diverse collective patterns through experimental model systems. Among these, active droplets have emerged as valuable synthetic analogs, effectively replicating key biological attributes and serving as ideal platforms for investigating collective phenomena. This research explores the collective behavior of 4-Cyano-4-pentyl-biphenyl (5CB) oil droplets across varying P\'eclet () numbers. At high , droplets exhibit a pusher mode of propulsion and form dynamic chain-like patterns. Decreasing enhances repulsive interactions among droplets, resulting in the inhibition of clustering. In the low regime, their repulsive interactions predominated by chemical field lead to the emergence of an ordered structure. Furthermore, we illustrate how active droplets efficiently navigate within a soft structured environment. These findings contribute to our comprehension of self-organized phenomena in active matter systems and provide insights for designing strategies for controlled locomotion in intricate fluidic environments.
Cite
@article{arxiv.2502.07009,
title = {Emergence of Order in Chemically Active Droplets: Temporal Dynamics and Collective Behavior},
author = {Sobiya Ashraf and Pawan Kumar and Prateek Dwivedi and Frédéric Blanc and Dipin Pillai and Rahul Mangal},
journal= {arXiv preprint arXiv:2502.07009},
year = {2025}
}
Comments
16 pages (12 main, 4 supporting), 12 figures (7 main, 5 supporting)