Coalescence of Polymer Droplets Moving on a Surface with Stiffness Gradient

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Tripathi, Divyansh, Kishore, Vimal, Theodorakis, Panagiotis E., Singh, Swarn Lata
Natura: Preprint
Pubblicazione: 2026
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866909054157193216
author Tripathi, Divyansh
Kishore, Vimal
Theodorakis, Panagiotis E.
Singh, Swarn Lata
author_facet Tripathi, Divyansh
Kishore, Vimal
Theodorakis, Panagiotis E.
Singh, Swarn Lata
contents Here, we study the coalescence of two droplets that are moving in the same direction on a soft surface; the motion of the droplets is caused by a gradient in the surface stiffness. As reference, stationary coalescence of the same droplets is also studied on the corresponding uniform surfaces for different stiffness values. To describe the coalescence phenomenon on a surface with stiffness gradient, a relevant range of velocity ratios of the leading and the trailing droplet was considered to elucidate the effect of this parameter on coalescence. Moreover, to analyze the dynamics of the process, the temporal growth of the bridge height $(h)$ was investigated, which follows a power law $(h \sim t^α)$, before eventually attaining a constant value. The obtained values of $α$ show a transition from a higher to a lower value as a function of time, pointing to the presence of two distinct power-law growth regimes, where the transition signifies the crossover from the capillarity-dominated regime to the viscoelasticty-dominated regime of coalescence. In addition, varying attractive strengths for droplet--droplet and intra-droplet interactions were considered. The results indicate that both the dynamics and the degree of the coalescence strongly depend on these interaction parameters. Thus, we anticipate that our results will shed more light on the durotaxis-driven coalescence of polymeric droplets for various relevant system parameters, which will have practical implications for applications ranging from microfluidics to ink-jet printing, where substrate properties may vary. In addition, results may add to the fundamental understanding of the interactions among multicellular aggregates moving on biological surfaces.
format Preprint
id arxiv_https___arxiv_org_abs_2605_18279
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Coalescence of Polymer Droplets Moving on a Surface with Stiffness Gradient
Tripathi, Divyansh
Kishore, Vimal
Theodorakis, Panagiotis E.
Singh, Swarn Lata
Soft Condensed Matter
Materials Science
Statistical Mechanics
Here, we study the coalescence of two droplets that are moving in the same direction on a soft surface; the motion of the droplets is caused by a gradient in the surface stiffness. As reference, stationary coalescence of the same droplets is also studied on the corresponding uniform surfaces for different stiffness values. To describe the coalescence phenomenon on a surface with stiffness gradient, a relevant range of velocity ratios of the leading and the trailing droplet was considered to elucidate the effect of this parameter on coalescence. Moreover, to analyze the dynamics of the process, the temporal growth of the bridge height $(h)$ was investigated, which follows a power law $(h \sim t^α)$, before eventually attaining a constant value. The obtained values of $α$ show a transition from a higher to a lower value as a function of time, pointing to the presence of two distinct power-law growth regimes, where the transition signifies the crossover from the capillarity-dominated regime to the viscoelasticty-dominated regime of coalescence. In addition, varying attractive strengths for droplet--droplet and intra-droplet interactions were considered. The results indicate that both the dynamics and the degree of the coalescence strongly depend on these interaction parameters. Thus, we anticipate that our results will shed more light on the durotaxis-driven coalescence of polymeric droplets for various relevant system parameters, which will have practical implications for applications ranging from microfluidics to ink-jet printing, where substrate properties may vary. In addition, results may add to the fundamental understanding of the interactions among multicellular aggregates moving on biological surfaces.
title Coalescence of Polymer Droplets Moving on a Surface with Stiffness Gradient
topic Soft Condensed Matter
Materials Science
Statistical Mechanics
url https://arxiv.org/abs/2605.18279