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Impact of substrate elasticity on contact angle saturation in electrowetting.
Markodimitrakis, Ioannis E; Sema, Dionysios G; Chamakos, Nikolaos T; Papadopoulos, Periklis; Papathanasiou, Athanasios G.
Afiliação
  • Markodimitrakis IE; School of Chemical Engineering, National Technical University of Athens, 15780, Greece. pathan@chemeng.ntua.gr.
  • Sema DG; School of Chemical Engineering, National Technical University of Athens, 15780, Greece. pathan@chemeng.ntua.gr.
  • Chamakos NT; School of Chemical Engineering, National Technical University of Athens, 15780, Greece. pathan@chemeng.ntua.gr.
  • Papadopoulos P; Department of Physics, University of Ioannina, Greece and Institute of Materials Science and Computing, University Research Center of Ioannina, Greece.
  • Papathanasiou AG; School of Chemical Engineering, National Technical University of Athens, 15780, Greece. pathan@chemeng.ntua.gr.
Soft Matter ; 17(16): 4335-4341, 2021 Apr 28.
Article em En | MEDLINE | ID: mdl-33908470
ABSTRACT
The electrostatically assisted wettability enhancement of dielectric solid surfaces, commonly termed as electrowetting-on-dielectric (EWOD), facilitates many microfluidic applications due to simplicity and energy efficiency. The application of a voltage difference between a conductive droplet and an insulated electrode substrate, where the droplet sits, is enough for realizing a considerable contact angle change. The contact angle modification is fast and almost reversible; however it is limited by the well-known saturation phenomenon which sets in at sufficiently high voltages. In this work, we experimentally show and computationally support the effect of elasticity and thickness of the dielectric on the onset of contact angle saturation. We found that the effect of elasticity is important especially for dielectric thickness smaller than 10 µm and becomes negligible for thickness above 20 µm. We attribute our findings on the effect of the dielectric thickness on the electric field, as well as on the induced electric stresses distribution, in the vicinity of the three phase contact line. Electric field and electric stresses distribution are numerically computed and support our findings which are of significant importance for the design of soft materials based microfluidic devices.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article