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van der Waals interaction between a moving nano-cylinder and a liquid thin film
Author(s) -
René Ledesma-Alonso,
Élie Raphaël,
Thomas Salez,
Philippe Tordjeman,
Dominique Legendre
Publication year - 2017
Publication title -
soft matter
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 170
eISSN - 1744-6848
pISSN - 1744-683X
DOI - 10.1039/c7sm00467b
Subject(s) - van der waals force , laplace pressure , cylinder , nano , materials science , lubrication , thin film , mechanics , lubrication theory , reynolds equation , reynolds number , marangoni effect , laplace's equation , optics , surface tension , chemistry , thermodynamics , nanotechnology , composite material , physics , geometry , boundary value problem , turbulence , molecule , convection , mathematics , organic chemistry , quantum mechanics
We study the static and dynamic interaction between a horizontal cylindrical nano-probe and a thin liquid film. The effects of the physical and geometrical parameters, with a special focus on the film thickness, the probe speed, and the distance between the probe and the free surface are analyzed. Deformation profiles have been computed numerically from a Reynolds lubrication equation, coupled to a modified Young-Laplace equation, which takes into account the probe/liquid and the liquid/substrate non-retarded van der Waals interactions. We have found that the film thickness and the probe speed have a significant effect on the threshold separation distance below which the jump-to-contact instability is triggered. These results encourage the use of horizontal cylindrical nano-probes to scan thin liquid films, in order to determine either the physical or geometrical properties of the latter, through the measurement of interaction forces.

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