The quest for swimming microrobots originates from possible applications in medicine, especially involving navigation in bodily fluids. Swimming microorganisms have become a source of inspiration because their propulsion mechanisms are effective in the low-Reynolds number regime. In this study, we address a propulsion mechanism inspired by metachronal waves, i.e. the spontaneous coordination of cilia leading to the fast swimming of ciliates. We analyse the biological mechanism (referring to its particular embodiment in Paramecium caudatum), and we investigate the contribution of its main features to the swimming performance, through a three-dimensional finite-elements model, in order to develop a simplified, yet effective artificial design....
Active matter systems are continuously consuming energy from the environment to achieve different pu...
This dissertation contains original research on a range of problems involving the locomotion of diff...
International audienceBio-hybrid micro-swimmers, composed of biological entities integrated with syn...
The quest for swimming microrobots originates from possible applications in medicine, especially inv...
The envisioned applications of microrobots in bodily fluids have raised the demand for effectively s...
Swimming microrobots can exhibit high levels of performance to move freely in the human body fluids ...
Abstract — Microrobots can make a great impact in medical applications such as minimally-invasive su...
Swimming microorganisms are a source of inspiration for small scale robots that are intended to oper...
Nature consists of numerous solutions to overcome challenges in designing artificial systems. Variou...
In the hydrodynamic environment of biological microorganisms inertia is irrelevant and all motion is...
Abstract — Swimming microrobots have the potential to be used in medical applications such as target...
Bacteria can exploit mechanics to display remarkable plasticity in response to locally changing phys...
Bacteria can exploit mechanics to display remarkable plasticity in response to locally changing phys...
Bio-inspired designs can provide an answer to engineering problems such as swimming strategies at th...
Active matter systems are continuously consuming energy from the environment to achieve different pu...
This dissertation contains original research on a range of problems involving the locomotion of diff...
International audienceBio-hybrid micro-swimmers, composed of biological entities integrated with syn...
The quest for swimming microrobots originates from possible applications in medicine, especially inv...
The envisioned applications of microrobots in bodily fluids have raised the demand for effectively s...
Swimming microrobots can exhibit high levels of performance to move freely in the human body fluids ...
Abstract — Microrobots can make a great impact in medical applications such as minimally-invasive su...
Swimming microorganisms are a source of inspiration for small scale robots that are intended to oper...
Nature consists of numerous solutions to overcome challenges in designing artificial systems. Variou...
In the hydrodynamic environment of biological microorganisms inertia is irrelevant and all motion is...
Abstract — Swimming microrobots have the potential to be used in medical applications such as target...
Bacteria can exploit mechanics to display remarkable plasticity in response to locally changing phys...
Bacteria can exploit mechanics to display remarkable plasticity in response to locally changing phys...
Bio-inspired designs can provide an answer to engineering problems such as swimming strategies at th...
Active matter systems are continuously consuming energy from the environment to achieve different pu...
This dissertation contains original research on a range of problems involving the locomotion of diff...
International audienceBio-hybrid micro-swimmers, composed of biological entities integrated with syn...