Worm-like emulsion droplets

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Abacousnac, Jatin, Chen, Wenjun, Brujic, Jasna, Grier, David G.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916686311981056
author Abacousnac, Jatin
Chen, Wenjun
Brujic, Jasna
Grier, David G.
author_facet Abacousnac, Jatin
Chen, Wenjun
Brujic, Jasna
Grier, David G.
contents Forming an interface between immiscible fluids incurs a free-energy cost that usually favors minimizing the interfacial area. An emulsion droplet of fixed volume therefore tends to form a sphere, and pairs of droplets tend to coalesce. Surfactant molecules adsorbed to the droplets' surfaces stabilize emulsions by providing a kinetic barrier to coalescence. Here, we show that the bound surfactants' osmotic pressure also competes with the droplet's intrinsic surface tension and can reverse the sign of the overall surface free energy. The onset of negative surface tension favors maximizing surface area and therefore favors elongation into a worm-like morphology. Analyzing this system in the Gibbs grand canonical ensemble reveals a phase transition between spherical and worm-like emulsions that is governed by the chemical potential of surfactant molecules in solution. Predictions based on this model agree with the observed behavior of an experimental model system composed of lipid-stabilized silicone oil droplets in an aqueous surfactant solution.
format Preprint
id arxiv_https___arxiv_org_abs_2504_09023
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Worm-like emulsion droplets
Abacousnac, Jatin
Chen, Wenjun
Brujic, Jasna
Grier, David G.
Soft Condensed Matter
Forming an interface between immiscible fluids incurs a free-energy cost that usually favors minimizing the interfacial area. An emulsion droplet of fixed volume therefore tends to form a sphere, and pairs of droplets tend to coalesce. Surfactant molecules adsorbed to the droplets' surfaces stabilize emulsions by providing a kinetic barrier to coalescence. Here, we show that the bound surfactants' osmotic pressure also competes with the droplet's intrinsic surface tension and can reverse the sign of the overall surface free energy. The onset of negative surface tension favors maximizing surface area and therefore favors elongation into a worm-like morphology. Analyzing this system in the Gibbs grand canonical ensemble reveals a phase transition between spherical and worm-like emulsions that is governed by the chemical potential of surfactant molecules in solution. Predictions based on this model agree with the observed behavior of an experimental model system composed of lipid-stabilized silicone oil droplets in an aqueous surfactant solution.
title Worm-like emulsion droplets
topic Soft Condensed Matter
url https://arxiv.org/abs/2504.09023