J. H. Snoeijer
Research Interests
Explore related searches
Contact this professor
Articles (10)
Soft wetting with (a)symmetric Shuttleworth effect
The wetting of soft polymer substrates brings in multiple complexities when compared with the wetting on rigid substrates. The contact angle of the liquid is no longer governed by Young’s Law, but is affected by the substrate’s bulk and surface deformations. On top of that, elastic interfaces exhibit a surface energy that depends on how much they are stretched—a feature known as the Shuttleworth effect (or as surface-elasticity). Here, we present two models through which we explore the wetting of drops in the presence of a strong Shuttleworth effect. The first model is macroscopic in character and consistently accounts for large deformations via a neo-Hookean elasticity. The second model is based on a mesoscopic description of wetting, using a reduced description of the substrate’s elasticity. While the second model is more empirical in terms of the elasticity, it enables a gradient dynamics formulation for soft wetting dynamics. We provide a detailed comparison between the equilibrium states predicted by the two models, from which we deduce robust features of soft wetting in the presence of a strong Shuttleworth effect. Specifically, we show that the (a)symmetry of the Shuttleworth effect between the ‘dry’ and ‘wet’ states governs horizontal deformations in the substrate. Our results are discussed in the light of recent experiments on the wettability of stretched substrates.
Year:
2022
Year:
2021
Collaborators (9)
Anupam Pandey
Assistant Professor
Syracuse University
Gunnar Peng
Lecturer in Applied Mathematics
University College London
Uddalok Sen
Assistant Professor
Wageningen University & Research
Uwe Thiele
University of Münster
Tim Segers
University of Twente
Vatsal Sanjay
University of Twente
Martin Essink
University of Twente
Thomas Salez
Université PSL
Minkush Kansal
University of Twente

How do I reach out?
Sign in for free to see their profile details and contact information.