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The vortex-driven dynamics of droplets within droplets

Author

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  • A. Tiribocchi

    (Istituto Italiano di Tecnologia
    Istituto per le Applicazioni del Calcolo CNR)

  • A. Montessori

    (Istituto per le Applicazioni del Calcolo CNR)

  • M. Lauricella

    (Istituto per le Applicazioni del Calcolo CNR)

  • F. Bonaccorso

    (Istituto Italiano di Tecnologia
    Istituto per le Applicazioni del Calcolo CNR)

  • S. Succi

    (Istituto Italiano di Tecnologia
    Istituto per le Applicazioni del Calcolo CNR
    Harvard University)

  • S. Aime

    (Harvard University
    Ecole Supérieure de Physique et Chimie Industrielles)

  • M. Milani

    (Universitá degli Studi di Milano)

  • D. A. Weitz

    (Harvard University
    Harvard University)

Abstract

Understanding the fluid-structure interaction is crucial for an optimal design and manufacturing of soft mesoscale materials. Multi-core emulsions are a class of soft fluids assembled from cluster configurations of deformable oil-water double droplets (cores), often employed as building-blocks for the realisation of devices of interest in bio-technology, such as drug-delivery, tissue engineering and regenerative medicine. Here, we study the physics of multi-core emulsions flowing in microfluidic channels and report numerical evidence of a surprisingly rich variety of driven non-equilibrium states (NES), whose formation is caused by a dipolar fluid vortex triggered by the sheared structure of the flow carrier within the microchannel. The observed dynamic regimes range from long-lived NES at low core-area fraction, characterised by a planetary-like motion of the internal drops, to short-lived ones at high core-area fraction, in which a pre-chaotic motion results from multi-body collisions of inner drops, as combined with self-consistent hydrodynamic interactions. The onset of pre-chaotic behavior is marked by transitions of the cores from one vortex to another, a process that we interpret as manifestations of the system to maximize its entropy by filling voids, as they arise dynamically within the capsule.

Suggested Citation

  • A. Tiribocchi & A. Montessori & M. Lauricella & F. Bonaccorso & S. Succi & S. Aime & M. Milani & D. A. Weitz, 2021. "The vortex-driven dynamics of droplets within droplets," Nature Communications, Nature, vol. 12(1), pages 1-10, December.
  • Handle: RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-020-20364-0
    DOI: 10.1038/s41467-020-20364-0
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