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Internal-Flow-Mediated, Tunable 1D Cassie-to-Wenzel Wetting Transition on Superhydrophobic Microcavity Surfaces during Evaporation

Title
Internal-Flow-Mediated, Tunable 1D Cassie-to-Wenzel Wetting Transition on Superhydrophobic Microcavity Surfaces during Evaporation
Author
송시몬
Keywords
1D wetting transition; Cassie state; Wenzel state; internal flow; evaporation
Issue Date
2019-10
Publisher
TAYLOR & FRANCIS INC
Citation
NANOSCALE AND MICROSCALE THERMOPHYSICAL ENGINEERING, v. 23, no. 4, Page. 275-288
Abstract
Superhydrophobic textured surfaces are known to maintain a nonwetted state unless external stimuli are applied since they can withstand high wetting pressure. Herein, we report a new category of tunable, one-dimensional (1D) Cassie-to-Wenzel wetting transitions during evaporation, even on superhydrophobic surfaces. The transition initiates at the periphery of the evaporating drop, and the wetting transition propagates toward the center of the drop. The transitions are observed for surfaces with wetting pressures as high as similar to 7,568 Pa, which is much higher than the Laplace pressure, i.e., similar to 200 Pa. In situ high-contrast fluorescence microscopy images of the evaporating drop show that the transition is induced by preferential depinning of the air-water interface and subsequent formation of air bubbles in the cavities near the three-phase contact line. The evaporation-induced internal flow enhances the pressure within the water droplet and subsequently causes a Cassie-to-Wenzel wetting transition.
URI
https://www.tandfonline.com/doi/full/10.1080/15567265.2019.1660439https://repository.hanyang.ac.kr/handle/20.500.11754/154668
ISSN
1556-7265; 1556-7273
DOI
10.1080/15567265.2019.1660439
Appears in Collections:
COLLEGE OF ENGINEERING[S](공과대학) > MECHANICAL ENGINEERING(기계공학부) > Articles
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