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Chemically Active Wetting

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arxiv 2312.07239 v1 pith:ZDA76GYV submitted 2023-12-12 cond-mat.soft physics.bio-ph

classification cond-mat.softphysics.bio-ph
keywords activewettingbindingchemicalchemicallygoverninglawsnon-equilibrium
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Wetting of liquid droplets on passive surfaces is ubiquitous in our daily lives, and the governing physical laws are well-understood. When surfaces become active, however, the governing laws of wetting remain elusive. Here we propose chemically active wetting as a new class of active systems where the surface is active due to a binding process that is maintained away from equilibrium. We derive the corresponding non-equilibrium thermodynamic theory and show that active binding fundamentally changes the wetting behavior, leading to steady, non-equilibrium states with droplet shapes reminiscent of a pancake or a mushroom. The origin of such anomalous shapes can be explained by mapping to electrostatics, where pairs of binding sinks and sources correspond to electrostatic dipoles along the triple line. This is an example of a more general analogy, where localized chemical activity gives rise to a multipole field of the chemical potential. The underlying physics is relevant for cells, where droplet-forming proteins can bind to membranes accompanied by the turnover of biological fuels.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Morphodynamics of surface-attached active drops

    cond-mat.soft 2024-11 conditional novelty 6.0 of 10

    Surface-attached active nematic drops, simulated without the thin-film approximation, adopt a wide range of stable shapes and flows whose symmetry is set by boundary anchoring.

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