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Biomedical subjects

S Bernet

Publications and source records attributed to S Bernet.

6 recordsLinked to original sources

Reverse orbiting of microparticles in optical vortices.

We report the observation of particles trapped at an air-water surface orbiting in a reverse direction with respect to the orbital angular momentum of the light field. The effect is explained by a combination of asymmetric particle shape and confinement of the particle on the 2D air-water interface. The experiment highlights the strong influence of the particle shape on the momentum transfer, an effect that is often not considered in optical trapping experiments.

Journal Article↗

Optical measurement of surface tension in a miniaturized air-liquid interface and its application in lung physiology.

We have previously shown that lamellar body-like particles, the form in which pulmonary surfactant is secreted, spontaneously disintegrate when they contact an air-liquid interface, eventually creating an interfacial film. Here, we combined these studies with a new technique enabling the simultaneous and non-invasive measurement of surface tension (gamma). This method is a refinement of the pendant-drop principle. A sapphire cone with a 300-microm aperture keeps the experimental fluid by virtue of surface coherence in a fixed and nearly planar position above the objective of an inverted microscope. The radius of curvature of the fluid meniscus is related to gamma and determines the pattern of light back-reflection upon epi-illumination. This method, which we name "inverted interface", has several novel aspects, in particular its microscopic dimensions. When using lamellar body-like particles freshly released by alveolar type II cells, we found that their conversion at the interface resulted in gamma-reduction close to 30 mN/m. After a fast initial decay, gamma-decrease proceeded slowly and in proportion to single particle conversions. These conversions ceased with time whereas gamma decreased further, probably due to reorganization of the already deposited material. The present investigation indicates that surface film formation by adsorption of large surfactant aggregates is an important mechanism by which gamma is reduced in the lung.

Animals↗