Confined drying of a binary liquid mixture droplet: A quantitative interferometric study under humidity control
Abstract
We present a methodology that combines Mach-Zehnder interferometry, a custom relative humidity (RH) controlled chamber, and a confined two-dimensional droplet geometry to enable precise investigations of drying of complex fluids and the associated transport mechanisms. This approach is applied to a model binary mixture, water-glycerol, the concentration-dependent thermodynamic and transport properties of which are relatively well documented. High-resolution interferometric imaging (6 m pixel, 1 frame s) allows simultaneous measurement of drying kinetics and internal concentration fields with accuracy, characterized here over a wide range of RH (25-95%), and thus P\'eclet numbers. The experimental results closely match a quasisteady, isothermal model of vapor-diffusion-controlled evaporation coupled to diffusion within the droplet. These data enable extraction of both the concentration-dependent mutual diffusion coefficient and the water chemical activity over almost the entire range of glycerol volume fraction , even from a single low-RH experiment. While agrees well with literature values, our measurements yield a consistent fit for . Complementary experiments with fluorescence microscopy confirm that buoyancy-driven convection, although present, remains negligible, so that mass diffusion dominates solute transport in this confined geometry. The overall agreement validates the methodology, demonstrating its robustness as a quantitative framework for probing drying dynamics and transport in complex fluids, with broad applicability to controlled evaporation studies.
Cite
@article{arxiv.2603.06282,
title = {Confined drying of a binary liquid mixture droplet: A quantitative interferometric study under humidity control},
author = {Ole Milark and Jean-Baptiste Salmon and Benjamin Sobac},
journal= {arXiv preprint arXiv:2603.06282},
year = {2026}
}