Features of the contact angle hysteresis at the nanoscale: A molecular dynamics insight

Author:

Mandrolko Viktor1ORCID,Castanet Guillaume1ORCID,Burian Sergii2ORCID,Grosu Yaroslav34ORCID,Klochko Liudmyla1ORCID,Lacroix David1ORCID,Isaiev Mykola1ORCID

Affiliation:

1. Université de Lorraine, CNRS, LEMTA 1 , 54000 Nancy, France

2. Faculty of Physics, Taras Shevchenko National University of Kyiv 2 , 64 Volodymyrska Street, Kyiv 01601, Ukraine

3. Centre for Cooperative Research on Alternative Energies (CIC energiGUNE), Basque Research and Technology Alliance (BRTA) 3 , Alava Technology Park, Albert Einstein 48, 01510 Vitoria-Gasteiz, Spain

4. Institute of Chemistry, University of Silesia 4 , Szkolna 9 Street, 40-006 Katowice, Poland

Abstract

Understanding the physics of a three-phase contact line between gas, liquid, and solid is important for numerous applications. At the macroscale, the response of a three-phase contact line to an external force action is often characterized by a contact angle hysteresis, and several models are presented in the literature for its description. Yet, there is still a need for more information about such model applications at the nanoscale. In this study, a molecular dynamics approach was used to investigate the shape of a liquid droplet under an external force for different wetting regimes. In addition, an analytic model for describing the droplet shape was developed. It gives us the possibility to evaluate the receding and advancing wetting angle accurately. With our modeling, we found that the interplay between capillary forces and viscous forces is crucial to characterize the droplet shape at the nanoscale. In this frame, the importance of the rolling movement of the interface between liquid and vapor was pointed out. We also demonstrate that in the range of the external forces when capillary forces are most significant compared to others, hysteresis is well described by the macroscale Cox–Voinov model.

Funder

Agence Nationale de la Recherche

Grand Équipement National De Calcul Intensif

Publisher

AIP Publishing

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