English

Chaos-generating periodic orbits of topological defects in confined active nematics

Soft Condensed Matter 2026-03-09 v3

Abstract

Active nematics in two dimensions stir themselves efficiently through internally generated chaotic flows, largely driven by motile +1/2+1/2 disclinations. We investigate how this tendency toward chaotic fluid stirring can, counterintuitively, produce certain ordered, periodic flows in confinement, characterized by stable periodic orbits of +1/2+1/2 disclinations. We computationally study two-dimensional active nematics in systems with boundary conditions requiring a prescribed number nn of excess +1/2+1/2 disclinations, using Beris-Edwards nematohydrodynamics simulations alongside an agent-based simulation approach. We find that when confinement is sufficiently strong to prevent defect pair-nucleation, but not strong enough to arrest all flow, then n=3n=3 defects generically follow a "golden braid" orbit as observed recently in experiments, and we predict a "silver braid" orbit of n=4n=4 defects. For these results and for greater numbers of defects, we show that the periodic or chaotic nature of the dynamics is determined by a balance between the number of defects and the number of vortices in the flow field, suggesting a new design criterion for ordered flows in active nematics.

Keywords

Cite

@article{arxiv.2503.10880,
  title  = {Chaos-generating periodic orbits of topological defects in confined active nematics},
  author = {Brandon Klein and Alejandro J. Soto Franco and Md Mainul Hasan Sabbir and Matthew J. Deutsch and Ross Kliegman and Robin L. B. Selinger and Kevin A. Mitchell and Daniel A. Beller},
  journal= {arXiv preprint arXiv:2503.10880},
  year   = {2026}
}

Comments

24 pages, 8 figures, plus 6 pages of supplementary information with 1 supplementary figure. Supplementary videos can be viewed at https://pages.jh.edu/dbeller3/resources/SI-Videos/Klein-arXiv-2025/