Bouncing microdroplets on hydrophobic surfaces

J Jamie McLauchlan (Department of Physics) J Jim S. Walker (School of Chemistry) V Vatsal Sanjay (CoMPhy Lab, Department of Physics) M Maziyar Jalaal (Van der Waals-Zeeman Institute) J Jonathan P. Reid (School of Chemistry, University of Bristol, Cantock’s Close, Bristol, BS8 1TS, United Kingdom) A Adam M. Squires (Department of Chemistry) A Anton Souslov

Abstract

Intuitively, slow droplets stick to a surface and faster droplets splash or bounce. However, recent work suggests that on nonwetting surfaces, whether microdroplets stick or bounce depends only on their size and fluid properties, but not on the incoming velocity. Here, we show using theory and experiments that even poorly wetting surfaces have a velocity-dependent criterion for bouncing of aqueous droplets, which is as high as 6 m/s for diameters of 30 to 50 μ m on hydrophobic surfaces such as Teflon. We quantify this criterion by analyzing the interplay of dissipation, surface adhesion, and incoming kinetic energy, and describe a wealth of associated phenomena, including air bubbles and satellite droplets. Our results on inertial microdroplets elucidate fundamental processes crucial to aerosol science and technology.

Article Details

Volume / Issue Vol. 122, Issue 36
Published September 09, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (7)

J

Jamie McLauchlan

Department of Physics

J

Jim S. Walker

School of Chemistry

V

Vatsal Sanjay

CoMPhy Lab, Department of Physics

M

Maziyar Jalaal

Van der Waals-Zeeman Institute

J

Jonathan P. Reid

School of Chemistry, University of Bristol, Cantock’s Close, Bristol, BS8 1TS, United Kingdom

A

Adam M. Squires

Department of Chemistry

A

Anton Souslov