Non-Monotonic Marangoni Suppression of Hydrodynamic Coarsening in Bicontinuous Liquid-Liquid Phase Separation

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Liu, Tian, Hao, Haohao, Liu, Jiaxi, Zhou, Yongjie, An, Feiyu, Tan, Huanshu
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914467530407936
author Liu, Tian
Hao, Haohao
Liu, Jiaxi
Zhou, Yongjie
An, Feiyu
Tan, Huanshu
author_facet Liu, Tian
Hao, Haohao
Liu, Jiaxi
Zhou, Yongjie
An, Feiyu
Tan, Huanshu
contents Hydrodynamic coarsening of bicontinuous domains is a central process in liquid-liquid phase separation, yet how soluble surfactants regulate this process remains poorly understood. Using a validated two-order-parameter phase-field model coupled to the incompressible Navier-Stokes equations, we show that hydrodynamic coarsening is suppressed primarily by surfactant-induced Marangoni stresses rather than by the reduction of mean interfacial tension alone. These stresses hinder interfacial coalescence, reorganize the local vortical flow, and thereby redirect the morphological evolution of bicontinuous domains. A central result is that this suppression depends non-monotonically on the surfactant Péclet number, with the strongest inhibition occurring at an intermediate value, $Pe_ψ=10$, rather than at $Pe_ψ=1$ or 100. Analyses of force evolution, interfacial surfactant statistics, and decomposed surfactant flux budgets show that this non-monotonicity arises from a competition between surfactant replenishment and gradient retention. At low $Pe_ψ$, diffusion efficiently replenishes the interface but smooths interfacial concentration gradients; at high $Pe_ψ$, advection preserves interfacial heterogeneity but leaves the interface insufficiently supplied with surfactant. The strongest suppression therefore occurs when sufficient interfacial surfactant loading coexists with persistent concentration gradients. These results establish a transport-controlled mechanism by which soluble surfactants regulate bicontinuous hydrodynamic coarsening.
format Preprint
id arxiv_https___arxiv_org_abs_2604_10920
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Non-Monotonic Marangoni Suppression of Hydrodynamic Coarsening in Bicontinuous Liquid-Liquid Phase Separation
Liu, Tian
Hao, Haohao
Liu, Jiaxi
Zhou, Yongjie
An, Feiyu
Tan, Huanshu
Fluid Dynamics
Soft Condensed Matter
Hydrodynamic coarsening of bicontinuous domains is a central process in liquid-liquid phase separation, yet how soluble surfactants regulate this process remains poorly understood. Using a validated two-order-parameter phase-field model coupled to the incompressible Navier-Stokes equations, we show that hydrodynamic coarsening is suppressed primarily by surfactant-induced Marangoni stresses rather than by the reduction of mean interfacial tension alone. These stresses hinder interfacial coalescence, reorganize the local vortical flow, and thereby redirect the morphological evolution of bicontinuous domains. A central result is that this suppression depends non-monotonically on the surfactant Péclet number, with the strongest inhibition occurring at an intermediate value, $Pe_ψ=10$, rather than at $Pe_ψ=1$ or 100. Analyses of force evolution, interfacial surfactant statistics, and decomposed surfactant flux budgets show that this non-monotonicity arises from a competition between surfactant replenishment and gradient retention. At low $Pe_ψ$, diffusion efficiently replenishes the interface but smooths interfacial concentration gradients; at high $Pe_ψ$, advection preserves interfacial heterogeneity but leaves the interface insufficiently supplied with surfactant. The strongest suppression therefore occurs when sufficient interfacial surfactant loading coexists with persistent concentration gradients. These results establish a transport-controlled mechanism by which soluble surfactants regulate bicontinuous hydrodynamic coarsening.
title Non-Monotonic Marangoni Suppression of Hydrodynamic Coarsening in Bicontinuous Liquid-Liquid Phase Separation
topic Fluid Dynamics
Soft Condensed Matter
url https://arxiv.org/abs/2604.10920