Few simulations exist for microswimmers near deformable interfaces. Here, we present numerical simulations of the hydrodynamic flows associated with a single microswimmer embedded in a binary fluid mixture. The two fluids demix, separated by a penetrable and deformable interface that we assume to be initially prepared in its planar ground state. We find that the microswimmer can either penetrate the interface, move parallel to it, or bounce back off it. We analyze how the trajectory depends on the swimmer type (pusher/puller) and the angle of incidence with respect to the interface. Our simulations are performed in a system with periodic boundary conditions, corresponding to an infinite array of fluid interfaces. A puller reaches a steady s...
This dissertation contains original research on a range of problems involving the locomotion of diff...
Microscale swimming may be intuited to be dominated by background flows, sweeping away any untethere...
At small length scales, low velocities, and high viscosity, the effects of inertia on motion through...
Few simulations exist for microswimmers near deformable interfaces. Here, we present numerical simul...
Transport of material across liquid interfaces is ubiquitous for living cells and is also a crucial ...
The hydrodynamics of a flagellated micro-organism is investigated when swimming close to a planar fr...
The hydrodynamics of a flagellated microswimmer moving in thin films is discussed. The fully resolve...
The hydrodynamics of a flagellated microswimmer moving in thin films is discussed. The fully re- sol...
Both, in their natural environment and in a controlled experimental setup, microswimmers regularly i...
Microorganisms often swim within heterogeneous fluid media composed of multiple materials with very ...
We study the orientational and translational dynamics of spherical microswimmers trapped at fluid in...
Both biological swimming microorganisms and artificial active particles capable of propulsion have r...
In the study of microscopic flows, self-propulsion has been particularly topical in recent years, wi...
Active matter systems are continuously consuming energy from the environment to achieve different pu...
Tiny self-propelled swimmers capable of autonomous navigation through complex environments provide a...
This dissertation contains original research on a range of problems involving the locomotion of diff...
Microscale swimming may be intuited to be dominated by background flows, sweeping away any untethere...
At small length scales, low velocities, and high viscosity, the effects of inertia on motion through...
Few simulations exist for microswimmers near deformable interfaces. Here, we present numerical simul...
Transport of material across liquid interfaces is ubiquitous for living cells and is also a crucial ...
The hydrodynamics of a flagellated micro-organism is investigated when swimming close to a planar fr...
The hydrodynamics of a flagellated microswimmer moving in thin films is discussed. The fully resolve...
The hydrodynamics of a flagellated microswimmer moving in thin films is discussed. The fully re- sol...
Both, in their natural environment and in a controlled experimental setup, microswimmers regularly i...
Microorganisms often swim within heterogeneous fluid media composed of multiple materials with very ...
We study the orientational and translational dynamics of spherical microswimmers trapped at fluid in...
Both biological swimming microorganisms and artificial active particles capable of propulsion have r...
In the study of microscopic flows, self-propulsion has been particularly topical in recent years, wi...
Active matter systems are continuously consuming energy from the environment to achieve different pu...
Tiny self-propelled swimmers capable of autonomous navigation through complex environments provide a...
This dissertation contains original research on a range of problems involving the locomotion of diff...
Microscale swimming may be intuited to be dominated by background flows, sweeping away any untethere...
At small length scales, low velocities, and high viscosity, the effects of inertia on motion through...