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Direct Measurement of the Elastohydrodynamic Lift Force at the Nanoscale

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arxiv 1907.05849 v2 pith:2KGKJWFW submitted 2019-07-01 cond-mat.soft cond-mat.mtrl-sciphysics.class-phphysics.flu-dyn

classification cond-mat.softcond-mat.mtrl-sciphysics.class-phphysics.flu-dyn
keywords forceliftcompliancesconfinementdirectelastohydrodynamicmeasurementsaturation
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We present the first direct measurement of the elastohydrodynamic lift force acting on a sphere moving within a viscous liquid, near and along a soft substrate under nanometric confinement. Using atomic force microscopy, the lift force is probed as a function of the gap size, for various driving velocities, viscosities, and stiffnesses. The force increases as the gap is reduced and shows a saturation at small gap. The results are in excellent agreement with scaling arguments and a quantitative model developed from the soft lubrication theory, in linear elasticity, and for small compliances. For larger compliances, or equivalently for smaller confinement length scales, an empirical scaling law for the observed saturation of the lift force is given and discussed.

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    A new Soft SFA measures surface forces from the deformation of a compliant membrane, with an analytical model for electrostatic deflection and nanonewton sensitivity.

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