Dynamics of evaporating, interconnected droplets

Abstract

We report on the dynamics of a pair of sessile droplets that are connected by a microchannel, yet open to the atmosphere and hence free to evaporate. Our results reveal that fluid exchange between droplets occurs via a pumping flow driven by differences in hydrostatic and Laplace pressure between the two droplets. Evaporation causes the droplets to slowly lose volume and change shape, which subsequently affects the fluid transport between them. We observe that, for equal contact areas, a larger droplet typically feeds a smaller droplet during evaporation and the flow in the connecting channel is unidirectional. However, for unequal contact areas, the flow can reverse in the connecting channel following a sudden switch in droplet shape that occurs during evaporation. A stability analysis reveals that the dynamics of the exchange flow are underpinned by a supercritical pitchfork bifurcation. Evaporative volume loss permits the droplet pair to step through a sequence of quasi-stationary states determined by the instantaneous volume of the system. Enforcing unequal contact area unfolds the bifurcation such that droplet-shape switching and the associated flow reversal can be understood in terms of a jump from the disconnected to the connected branch of the bifurcation. This establishes symmetry breaking as a mechanism to induce evaporation-driven flow reversal in connected droplets.

Graphical abstract: Dynamics of evaporating, interconnected droplets

Supplementary files

Article information

Article type
Paper
Submitted
18 Jul 2025
Accepted
22 Oct 2025
First published
23 Oct 2025
This article is Open Access
Creative Commons BY-NC license

Soft Matter, 2026, Advance Article

Dynamics of evaporating, interconnected droplets

C. Ren, S. G. Subramanian, S. Jain, A. L. Hazel, F. Box and A. Juel, Soft Matter, 2026, Advance Article , DOI: 10.1039/D5SM00738K

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