Interfacial activity dynamics of confined active droplets
Prashanth Ramesh, Babak Vajdi Hokmabad, Arnold J.T.M. Mathijssen,, Dmitri O. Pushkin, Corinna C. Maass

TL;DR
This study investigates how chemical reactions and interfacial hydrodynamics interact to produce complex flow behaviors in confined active droplets, revealing multistability and transitions in flow modes through combined experiments and modeling.
Contribution
It provides the first detailed experimental and theoretical analysis of interfacial activity dynamics and flow mode transitions in confined active droplets.
Findings
Flow vortex migration from posterior to anterior with increasing droplet size
Bistability between dipolar and quadrupolar flow modes
Transition to multipolar flow modes over time
Abstract
Active emulsions can spontaneously form self-propelled droplets or phoretic micropumps. It has been predicted that the interaction with their self-generated chemical fields can lead to multistable higher-order flows and chemodynamic phenomena. However, it remains unclear how such reaction-advection-diffusion instabilities can emerge from the interplay between chemical reactions and interfacial hydrodynamics. Here, we simultaneously measure the flow fields and the chemical concentration fields using dual-channel microscopy for oil droplets that dynamically solubilize in a supramicellar aqueous surfactant solution. We developed an experimentally tractable setup with micropumps, droplets that are pinned between the top and bottom surfaces of a microfluidic reservoir, which we compare directly to predictions from a Brinkman squirmer model to account for the confinement. With increasing…
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Taxonomy
TopicsMicro and Nano Robotics · Pickering emulsions and particle stabilization · Innovative Microfluidic and Catalytic Techniques Innovation
