4.6 Article

Design of Surface Hierarchy for Extreme Hydrophobicity

Journal

LANGMUIR
Volume 25, Issue 11, Pages 6129-6136

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/la803249t

Keywords

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Funding

  1. Ministry of Education, Science and Technology [KRF-2007-412-J03002, M10711270001-08M1127-00110]
  2. National Research Foundation of Korea [2009-0094044, 과C6A1803, 2008-2000200] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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An extreme water-repellent surface is designed and fabricated with a hierarchical integration of nano- and microscale textures. We combined the two readily accessible etching techniques, a standard deep silicon etching, and a gas phase isotropic etching (XeF2) for the uniform formation of double roughness on a silicon surface. The fabricated synthetic surface shows the hallmarks of the Lotus effect: durable super water repellency (contact angle > 173 degrees) and the sole existence of the Cassie state even with a very large spacing between roughness structures (> 1:7.5). We directly demonstrate the absence of the Wenzel's or wetted state through a series of experiments. When a water droplet is squeezed or dropped on the fabricated surface, the contact angle hardly changes and the released droplet instantly springs back without remaining wetted on the surface. We also show that a ball of water droplet keeps bouncing on the surface. Furthermore, the droplet shows very small contact angle hysteresis which can be further used in applications such as super-repellent coating and low-drag microfludics. These properties are attributed to the nano/micro surface texture designed to keep the nonwetting state energetically favorable.

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