Slippage of Water Past Superhydrophobic Carbon Nanotube Forests in Microchannels
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- 10 October 2006
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review Letters
- Vol. 97 (15), 156104
- https://doi.org/10.1103/physrevlett.97.156104
Abstract
We present in this Letter an experimental characterization of liquid flow slippage over superhydrophobic surfaces made of carbon nanotube forests, incorporated in microchannels. We make use of a particle image velocimetry technique to achieve the submicrometric resolution on the flow profile necessary for accurate measurement of the surface hydrodynamic properties. We demonstrate boundary slippage on the Cassie superhydrophobic state, associated with slip lengths of a few microns, while a vanishing slip length is found in the Wenzel state when the liquid impregnates the surface. Varying the lateral roughness scale of our carbon nanotube forest-based superhydrophobic surfaces, we demonstrate that the slip length varies linearly with in line with theoretical predictions for slippage on patterned surfaces.
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This publication has 19 references indexed in Scilit:
- Probing the Nanohydrodynamics at Liquid-Solid Interfaces Using Thermal MotionPhysical Review Letters, 2006
- Microfluidics: Fluid physics at the nanoliter scaleReviews of Modern Physics, 2005
- Direct velocity measurements of the flow past drag-reducing ultrahydrophobic surfacesPhysics of Fluids, 2005
- Boundary Slip on Smooth Hydrophobic Surfaces: Intrinsic Effects and Possible ArtifactsPhysical Review Letters, 2005
- Laminar drag reduction in microchannels using ultrahydrophobic surfacesPhysics of Fluids, 2004
- Effective slip in pressure-driven Stokes flowJournal of Fluid Mechanics, 2003
- Low-friction flows of liquid at nanopatterned interfacesNature Materials, 2003
- Dynamic Effects on Force Measurements. 2. Lubrication and the Atomic Force MicroscopeLangmuir, 2003
- Large Slip Effect at a Nonwetting Fluid-Solid InterfacePhysical Review Letters, 1999
- Flows satisfying mixed no-slip and no-shear conditionsZeitschrift für angewandte Mathematik und Physik, 1972