Interest in the design of bioinspired robotic microswimmers is growing rapidly, motivated by the spectacular capabilities of their unicellular biological templates. Predicting the swimming speed and efficiency of such devices in a reliable way is essential for their rational design, and to optimize their performance. The hydrodynamic simulations needed for this purpose are demanding and simplified models that neglect nonlocal hydrodynamic interactions (e.g., resistive force theory for slender, filament-like objects that are the typical propulsive apparatus for unicellular swimmers) are commonly used. We show through a detailed case study of a model robotic system consisting of a spherical head powered by a rotating helical flagellum that (a...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
Helical microswimmers have been involved in a wide variety of applications, ranging from in vivo tas...
In the hydrodynamic environment of biological microorganisms inertia is irrelevant and all motion is...
Interest in the design of bioinspired robotic microswimmers is growing rapidly, motivated by the spe...
We combine a general formulation of microswimmer equations of motion with a numerical beadshell mode...
The envisioned applications of microrobots in bodily fluids have raised the demand for effectively s...
Active matter systems are continuously consuming energy from the environment to achieve different pu...
Accurate prediction of the three-dimensional trajectories of micro/nano-swimmers is a key element as...
Experiments are carried out with a cm-scale bio-mimetic swimming robot, which consists of a body and...
Artificial microswimmers present both a solution and a challenge as alternative tools to be used in ...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
19 pages, 10 figuresIn this paper we are interested in optimizing the shape of multi-flagellated hel...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
Accurate prediction of the three-dimensional trajectories of micro/nano-swimmers is a key element as...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
Helical microswimmers have been involved in a wide variety of applications, ranging from in vivo tas...
In the hydrodynamic environment of biological microorganisms inertia is irrelevant and all motion is...
Interest in the design of bioinspired robotic microswimmers is growing rapidly, motivated by the spe...
We combine a general formulation of microswimmer equations of motion with a numerical beadshell mode...
The envisioned applications of microrobots in bodily fluids have raised the demand for effectively s...
Active matter systems are continuously consuming energy from the environment to achieve different pu...
Accurate prediction of the three-dimensional trajectories of micro/nano-swimmers is a key element as...
Experiments are carried out with a cm-scale bio-mimetic swimming robot, which consists of a body and...
Artificial microswimmers present both a solution and a challenge as alternative tools to be used in ...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
19 pages, 10 figuresIn this paper we are interested in optimizing the shape of multi-flagellated hel...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
Accurate prediction of the three-dimensional trajectories of micro/nano-swimmers is a key element as...
The field of synthetic microswimmers, micro-robots moving in aqueous environments, has evolved signi...
Helical microswimmers have been involved in a wide variety of applications, ranging from in vivo tas...
In the hydrodynamic environment of biological microorganisms inertia is irrelevant and all motion is...