16 pagesInternational audienceWe study the sedimentation of buoyant giant lipid vesicles in a quiescent fluid at velocities ranging from 5 to 20 μm/s. Floppy vesicles are deformed by the flow. Their bottom (upstream) part remains spherical while their top (downstream) part narrows down and elongates along the direction of motion, resulting in pear-like shapes or in the reversible formation of a micron-size tube at the vesicle top. The sedimentation velocity of vesicle is very similar to that of a rigid sphere. Using a thermodynamic approach, we show that the hydrodynamic force acting at the top of a floppy vesicle can exceed the critical force needed to draw a membrane tube. We predict that the tube radius scales as the power 1/3 of the rat...
In the last decade, considerable efforts have been undertaken to measure, model and simulate the mot...
International audienceThe behaviour of a vesicle suspension in a simple shear flow between plates (C...
Biomimetic and biological membranes consist of lipid-protein bilayers in their fluid state. Because ...
16 pagesInternational audienceWe study the sedimentation of buoyant giant lipid vesicles in a quiesc...
Giant vesicles are deformable lipid membranes enclosing a fluid, with diameters of several microns. ...
We study the shape relaxation of spherical giant unilamellar vesicles which have been deformed far f...
When flexible vesicles are placed in an extensional flow (planar or uniaxial), they undergo a wide r...
Giant vesicles are deformable lipid membranes enclosing a fluid, with diameters of several microns. ...
International audienceThe dynamics of suspensions of falling soft objects is a longstanding problem ...
AbstractWe report a detailed study of the behavior (shapes, experienced forces, velocities) of giant...
Lipid bilayer membranes are known to form various structures like large sheets or vesicles. When bot...
A variety of factors, including changes in temperature or osmotic pressure, can trigger morphologica...
The microscopic dynamics of objects suspended in a fluid determines the macroscopic rheology of a su...
AbstractVariations in the size of vesicles formed by extrusion through small pores are discussed in ...
AbstractA sufficiently large force acting on a single point of the fluid membrane of a flaccid phosp...
In the last decade, considerable efforts have been undertaken to measure, model and simulate the mot...
International audienceThe behaviour of a vesicle suspension in a simple shear flow between plates (C...
Biomimetic and biological membranes consist of lipid-protein bilayers in their fluid state. Because ...
16 pagesInternational audienceWe study the sedimentation of buoyant giant lipid vesicles in a quiesc...
Giant vesicles are deformable lipid membranes enclosing a fluid, with diameters of several microns. ...
We study the shape relaxation of spherical giant unilamellar vesicles which have been deformed far f...
When flexible vesicles are placed in an extensional flow (planar or uniaxial), they undergo a wide r...
Giant vesicles are deformable lipid membranes enclosing a fluid, with diameters of several microns. ...
International audienceThe dynamics of suspensions of falling soft objects is a longstanding problem ...
AbstractWe report a detailed study of the behavior (shapes, experienced forces, velocities) of giant...
Lipid bilayer membranes are known to form various structures like large sheets or vesicles. When bot...
A variety of factors, including changes in temperature or osmotic pressure, can trigger morphologica...
The microscopic dynamics of objects suspended in a fluid determines the macroscopic rheology of a su...
AbstractVariations in the size of vesicles formed by extrusion through small pores are discussed in ...
AbstractA sufficiently large force acting on a single point of the fluid membrane of a flaccid phosp...
In the last decade, considerable efforts have been undertaken to measure, model and simulate the mot...
International audienceThe behaviour of a vesicle suspension in a simple shear flow between plates (C...
Biomimetic and biological membranes consist of lipid-protein bilayers in their fluid state. Because ...