Activity-Driven Dewetting and Rupture in Thin Liquid Films

Fuente: arXiv
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Autori principali: M, Preethi, Davis, Daniya, Gupta, Bhaskar Sen
Natura: Preprint
Pubblicazione: 2026
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author M, Preethi
Davis, Daniya
Gupta, Bhaskar Sen
author_facet M, Preethi
Davis, Daniya
Gupta, Bhaskar Sen
contents Thin-film dewetting is classically governed by an adhesion-mediated spinodal instability in which curvature-driven diffusion controls post-rupture coarsening. We show that internal activity fundamentally restructures this instability. Using a minimal microscopic model of an active liquid film on a solid substrate, we identify a competition between active stresses and film-substrate adhesion that produces two independently regulated dynamical length scales: vertical liquid accumulation and lateral rupture propagation. While passive films exhibit universal diffusion-limited growth, $\ell_z(t)\sim t^{1/3}$, activity converts transport from curvature-controlled diffusion to persistence-driven motion, yielding a continuous increase of the coarsening exponent from $\approx 0.33$ to $\approx 0.6$. The growth law analysis shows that persistent self-propulsion introduces an advective flux that competes with curvature-induced chemical potential gradients, enhancing growth when the persistence length becomes comparable to the evolving domain size. Simultaneously, the rupture front transitions from dissipative spreading to strongly accelerated propagation approaching ballistic scaling. This decoupling shows that activity does not simply renormalize effective surface forces but generates a distinct nonequilibrium interfacial instability governed by the balance between persistence length and adhesion. The results provide a minimal physical mechanism linking classical thin-film dewetting to dewetting-like rupture observed in active and biological materials.
format Preprint
id arxiv_https___arxiv_org_abs_2602_23933
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Activity-Driven Dewetting and Rupture in Thin Liquid Films
M, Preethi
Davis, Daniya
Gupta, Bhaskar Sen
Soft Condensed Matter
Materials Science
Other Condensed Matter
Statistical Mechanics
Biological Physics
Thin-film dewetting is classically governed by an adhesion-mediated spinodal instability in which curvature-driven diffusion controls post-rupture coarsening. We show that internal activity fundamentally restructures this instability. Using a minimal microscopic model of an active liquid film on a solid substrate, we identify a competition between active stresses and film-substrate adhesion that produces two independently regulated dynamical length scales: vertical liquid accumulation and lateral rupture propagation. While passive films exhibit universal diffusion-limited growth, $\ell_z(t)\sim t^{1/3}$, activity converts transport from curvature-controlled diffusion to persistence-driven motion, yielding a continuous increase of the coarsening exponent from $\approx 0.33$ to $\approx 0.6$. The growth law analysis shows that persistent self-propulsion introduces an advective flux that competes with curvature-induced chemical potential gradients, enhancing growth when the persistence length becomes comparable to the evolving domain size. Simultaneously, the rupture front transitions from dissipative spreading to strongly accelerated propagation approaching ballistic scaling. This decoupling shows that activity does not simply renormalize effective surface forces but generates a distinct nonequilibrium interfacial instability governed by the balance between persistence length and adhesion. The results provide a minimal physical mechanism linking classical thin-film dewetting to dewetting-like rupture observed in active and biological materials.
title Activity-Driven Dewetting and Rupture in Thin Liquid Films
topic Soft Condensed Matter
Materials Science
Other Condensed Matter
Statistical Mechanics
Biological Physics
url https://arxiv.org/abs/2602.23933