English

Emergent clusters in strongly confined systems

Soft Condensed Matter 2026-01-23 v2 Fluid Dynamics

Abstract

Driven suspensions, where energy is input at a particle scale, are a framework for understanding general principles of out-of-equilibrium organization. A large number of simple interacting units can give rise to non-trivial structure and hierarchy. Rotationally driven colloidal particles are a particularly nice model system for exploring this pattern formation, as the dominant interaction between the particles is hydrodynamic. Here, we use experiments and large-scale simulations to explore how strong confinement alters dynamics and emergent structure at the particle scale in these driven suspensions. Surprisingly, we find that large-scale (many times the particle size) density fluctuations emerge as a result of confinement, and that these density fluctuations sensitively depend on the degree of confinement. We extract a characteristic length scale for these fluctuations, demonstrating that the simulations quantitatively reproduce the experimental pattern. Moreover, we show that these density fluctuations are a result of the large-scale recirculating flow generated by the rotating particles inside a sealed chamber. This surprising result shows that even when system boundaries are far away, they can cause qualitative changes to mesoscale structure and ordering.

Keywords

Cite

@article{arxiv.2511.00234,
  title  = {Emergent clusters in strongly confined systems},
  author = {Pamud Akalanka Bethmage and Ryker Fish and Brennan Sprinkle and Michelle M. Driscoll},
  journal= {arXiv preprint arXiv:2511.00234},
  year   = {2026}
}
R2 v1 2026-07-01T07:16:30.243Z