Saved in:
Bibliographic Details
Main Authors: Kar, Salini, Menon, Rohit V., Das, Sanbed, Pandya, Parth, Dutta, Sayantan, Chowdhury, Mithun
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2601.09376
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866917203752779776
author Kar, Salini
Menon, Rohit V.
Das, Sanbed
Pandya, Parth
Dutta, Sayantan
Chowdhury, Mithun
author_facet Kar, Salini
Menon, Rohit V.
Das, Sanbed
Pandya, Parth
Dutta, Sayantan
Chowdhury, Mithun
contents The autonomous motion of liquid crystal oil droplets in micellar media arises from spontaneous breaking of time reversal symmetry via nonlinear coupling between Marangoni stresses and surfactant transport. While this phenomenon has been widely studied, the influence of micellar solute structure remains unexplored. By modifying micellar architecture using a structure forming salt, we uncover a pronounced non monotonic dependence of droplet velocity on salt concentration. Increasing salt simultaneously raises the medium viscosity and drives a transition of micelles from spherical to rod-like or worm like morphologies. Using complementary experiments, we quantify the viscosity and micellar interaction lengthscale as functions of the salt to surfactant ratio and develop a theoretical model that consistently reproduces the measured propulsion speeds. Flow fields around the droplets are characterized by particle image velocimetry. Our results demonstrate that salt surfactant composition governs active droplet propulsion by jointly controlling micellar solute interaction lengthscales and medium viscosity.
format Preprint
id arxiv_https___arxiv_org_abs_2601_09376
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Interplay of Micellar Architecture and Viscosity Governs Active Droplet Motility
Kar, Salini
Menon, Rohit V.
Das, Sanbed
Pandya, Parth
Dutta, Sayantan
Chowdhury, Mithun
Soft Condensed Matter
The autonomous motion of liquid crystal oil droplets in micellar media arises from spontaneous breaking of time reversal symmetry via nonlinear coupling between Marangoni stresses and surfactant transport. While this phenomenon has been widely studied, the influence of micellar solute structure remains unexplored. By modifying micellar architecture using a structure forming salt, we uncover a pronounced non monotonic dependence of droplet velocity on salt concentration. Increasing salt simultaneously raises the medium viscosity and drives a transition of micelles from spherical to rod-like or worm like morphologies. Using complementary experiments, we quantify the viscosity and micellar interaction lengthscale as functions of the salt to surfactant ratio and develop a theoretical model that consistently reproduces the measured propulsion speeds. Flow fields around the droplets are characterized by particle image velocimetry. Our results demonstrate that salt surfactant composition governs active droplet propulsion by jointly controlling micellar solute interaction lengthscales and medium viscosity.
title Interplay of Micellar Architecture and Viscosity Governs Active Droplet Motility
topic Soft Condensed Matter
url https://arxiv.org/abs/2601.09376