Near-field Hydrodynamics Disentangles Angular Correlations in Confined Active Suspensions
Abstract
Spatial confinement profoundly impacts the transport and self-organization of active matter across diverse biological systems. While the collective orders in confined active matter have been extensively characterized, how geometric constraints reshape near-field flows and the resulting inter-particle correlations remains largely unexplored. In this study, we combine experiments and hydrodynamic simulations to investigate inter-particle correlations within quasi-two-dimensional Chlamydomonas reinhardtii suspensions. We reveal two disentangled modes characterizing cell pairs: a dipolar mode and an entrainment mode, which exhibit a density- and distance-dependent competition. Combining single-cell flow field analysis, hydrodynamic simulations, and active-passive mixtures, we link these two modes to singular hydrodynamics and lubrication-induced entrainment. Our results demonstrate that spatiotemporal correlations in confined active matter are fundamentally rooted in the interplay of these two hydrodynamic mechanisms.
Cite
@article{arxiv.2608.05756,
title = {Near-field Hydrodynamics Disentangles Angular Correlations in Confined Active Suspensions},
author = {Changle Liao and Haruki Hayano and Yuto Uesugi and Akira Furukawa and Daiki Nishiguchi and Kazumasa A. Takeuchi},
journal= {arXiv preprint arXiv:2608.05756},
year = {2026}
}
Comments
6+8 pages, 4+7 figures, 0+1 table