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Ordering spontaneous flows and aging in active fluids depositing tracks

Samuel Bell1,*, Joseph Ackermann1,2,†, Ananyo Maitra1,3,‡, and Raphael Voituriez1,§

  • 1Sorbonne Université, CNRS, Institut de Biologie Paris-Seine (IBPS), Laboratoire Jean Perrin (LJP), F-75005 Paris, France
  • 2Laboratoire de Physique de l'Ecole Normale Supérieure, ENS, Université PSL, CNRS, Sorbonne Université, Université Paris Cité, F-75005 Paris, France
  • 3LPTM, CNRS/CY Cergy Paris Université, F-95032 Cergy-Pontoise cedex, France

  • *Contact author: samuel.bell@sorbonne-universite.fr
  • †Contact author: joseph.ackermann@sorbonne-universite.fr
  • ‡Contact author: nyomaitra07@gmail.com
  • §Contact author: raphael.voituriez@sorbonne-universite.fr

Phys. Rev. E 111, L023405 – Published 27 February, 2025

DOI: https://doi.org/10.1103/PhysRevE.111.L023405

Abstract

Growing experimental evidence shows that cell monolayers can induce long-lived perturbations to their environment, akin to footprints, which in turn influence the global dynamics of the system. Inspired by these observations, we propose a comprehensive theoretical framework to describe systems where an active field dynamically interacts with a non-advected footprint field, deposited by the active field. We derive the corresponding general hydrodynamics for both polar and nematic fields. Our findings reveal that the dynamic coupling to a footprint field induces remarkable effects absent in classical active hydrodynamics, such as symmetry-dependent modifications to the isotropic-ordered transition, alterations in spontaneous flow transitions, and initial condition-dependent aging dynamics characterized by long-lived transient states. Our results suggest that footprint deposition could be a key mechanism determining the dynamical phases of cellular systems, or more generally active systems inducing long-lived perturbations to their environment.

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