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Extensive Spatiotemporal Chaos in Nonreciprocal Flocking.

Created on 26 Sep 2026

Authors

Chul-Ung Woo, Jae Dong Noh, Heiko Rieger

Published in

Physical review letters. Volume 137. Issue 11. Pages 118301. Sep 11, 2026.

Abstract

Nonreciprocal interactions in active matter give rise to a multitude of fascinating phenomena among which are collective oscillatory states without intrinsic particle chirality and active turbulence. Here we show that, in a paradigmatic model for nonreciprocal flocking, the two-species Vicsek model, these two states coexist: chiral order for small flocks and extensive spatiotemporal chaos for large flocks, both separated by a finite-wavelength instability whose scale is set by the rotation radius of the chiral orbits. For system sizes larger than this length scale extensive spatiotemporal chaos unfolds, as manifested by an extensive number of positive Lyapunov exponents as well as of Floquet exponents, a finite correlation and chaotic length, and a broad energy spectrum. Our results suggest that complex, turbulent behavior is a generic possibility in systems where particles or fields interact asymmetrically and may have significant implications for understanding how nonreciprocal interactions could drive chaotic, fluidlike behavior in active matter.

PMID:
42789887
Bibliographic data and abstract were imported from PubMed on 26 Sep 2026.

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