Metastable states and wetting transition of submerged superhydrophobic structures

Pengyu Lv, Yahui Xue, Yipeng Shi, Hao Lin, Huiling Duan

Research output: Contribution to journalArticlepeer-review

221 Scopus citations

Abstract

Superhydrophobicity on structured surfaces is frequently achieved via the maintenance of liquid-air interfaces adjacent to the trapped air pockets. These interfaces, however, are subject to instabilities due to the Cassie-Baxter-to-Wenzel transition and total wetting. The current work examines in situ liquid-air interfaces on a submerged surface patterned with cylindrical micropores using confocal microscopy. Both the pinned Cassie-Baxter and depinned metastable states are directly observed and measured. The metastable state dynamically evolves, leading to a transition to the Wenzel state. This process is extensively quantified under different ambient pressure conditions, and the data are in good agreement with a diffusion-based model prediction. A similarity law along with a characteristic time scale is derived which governs the lifetime of the air pockets and which can be used to predict the longevity of underwater superhydrophobicity.

Original languageEnglish (US)
Article number196101
JournalPhysical review letters
Volume112
Issue number19
DOIs
StatePublished - May 12 2014

All Science Journal Classification (ASJC) codes

  • General Physics and Astronomy

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