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hal.structure.identifierNanoprobe Laboratory for Bio- and Nanotechnology and Biomimetics
dc.contributor.authorBHUSHAN, Bharat
hal.structure.identifierNanoprobe Laboratory for Bio- and Nanotechnology and Biomimetics
hal.structure.identifierMechanical Engineering
dc.contributor.authorWANG, Yuliang
hal.structure.identifierCentre de physique moléculaire optique et hertzienne [CPMOH]
dc.contributor.authorMAALI, Abdelhamid
dc.date.created2009-02-18
dc.date.issued2009-03-23
dc.identifier.issn0743-7463
dc.description.abstractEnSlip length has been measured using the dynamic atomic force microscopy (AFM) method. Unlike the contact AFM method, the sample surface approaches an oscillating sphere with a very low velocity in the dynamic AFM method. During this process, the amplitude and phase shift data are recorded to calculate the hydrodynamic damping coefficient, which is then used to obtain slip length. In this study, a glass sphere with a large radius was glued to the end of an AFM cantilever to measure the slip length on rough surfaces. Experimental results for hydrophilic, hydrophobic, and superhydrophobic surfaces show that the hydrodynamic damping coefficient decreases from the hydrophilic surface to the hydrophobic surface and from the hydrophobic one to the superhydrophobic one. The slip lengths obtained on the hydrophobic and superhydrophobic surfaces are 43 and 236 nm, respectively, which indicates increasing boundary slip from the hydrophobic surface to the superhydrophobic one.
dc.language.isoen
dc.publisherAmerican Chemical Society
dc.title.enBoundary slip study on hydrophilic, hydrophobic and superhydrophobic surfaces with dynamic atomic force microscopy
dc.typeArticle de revue
dc.identifier.doi10.1021/la900612s
bordeaux.journalLangmuir
bordeaux.page8117-8121
bordeaux.volume25
bordeaux.issue14
bordeaux.peerReviewedoui
hal.identifierhal-00668963
hal.version1
hal.popularnon
hal.audienceInternationale
hal.origin.linkhttps://hal.archives-ouvertes.fr//hal-00668963v1
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