Active carpets drive non-equilibrium diffusion and enhanced molecular fluxes

ORAL

Abstract

Biological activity is often highly concentrated on surfaces, across the scales from molecular motors and ciliary arrays to sessile and motile organisms. These 'active carpets' locally inject energy into their surrounding fluid. Whereas Fick's laws of diffusion are established near equilibrium, it is unclear how to solve non-equilibrium transport driven by such boundary-actuated fluctuations. Here, we derive the enhanced diffusivity of molecules or passive particles as a function of distance from an active carpet. Following Schnitzer's telegraph model, we then cast these results into generalised Fick's laws. Two archetypal problems are solved using these laws: First, considering sedimentation towards an active carpet, we find a self-cleaning effect where surface-driven fluctuations can repel particles. Second, considering diffusion from a source to an active sink, say nutrient capture by suspension feeders, we find a large molecular flux compared to thermal diffusion. Hence, our results could elucidate certain non-equilibrium properties of active coating materials and life at interfaces.

*F.G.-L. acknowledges Millennium Nucleus Physics of Active Matter of ANID (Chile). H.L. acknowledges support from the Deutsche Forschungsgemeinschaft, DFG projects SPP 1726 and LO 418/23. A.J.T.M. acknowledges funding from the Human Frontier Science Program (Fellowship LT001670/2017) and the United States Department of Agriculture (USDA-NIFA AFRI grants 2020-67017-30776 and 2020-67015-32330). F.G.-L. and A.M. also acknowledge support from the American Physical Society (APS) for an International Research Travel Award (IRTAP).

Publication: Guzmán-Lastra, F., Löwen, H. & Mathijssen, A.J.T.M. Active carpets drive non-equilibrium diffusion and enhanced molecular fluxes. Nat Commun 12, 1906 (2021).

Presenters

  • Arnold J Mathijssen

    • University of Pennsylvania

Authors

  • Arnold J Mathijssen

    • University of Pennsylvania
  • Hartmut Löwen

    • Heinrich-Heine-Universität Düsseldorf
    • Heinrich Heine University Düsseldorf
  • Francisca Guzman-Lastra

    • Universidad de Chile