Biological cilia, hairlike organelles on cell surfaces, often exhibit collective wavelike motion known as metachrony, which helps generating fluid flow. Inspired by nature, researchers have developed artificial cilia as microfluidic actuators, exploring several methods to mimic the metachrony. However, reported methods are difficult to miniaturize because they require either control of individual cilia properties or the generation of a complex external magnetic field. We introduce a concept that generates metachronal motion of magnetic artificial cilia (MAC), even though the MAC are all identical, and the applied external magnetic field is uniform. This is achieved by integrating a paramagnetic substructure in the substrate underneath the M...
Metachornal waves in magnetic micro-robotic paddles for artificial cilia - DatasetBiological cilia g...
In this work we study the effect of metachronal waves on the flow created by magnetically driven pla...
Magnetic artificial cilia (MAC) are flexible hair-like micro-actuators inspired by biological cilia....
Biological cilia, hairlike organelles on cell surfaces, often exhibit collective wavelike motion kno...
Biological cilia that generate fluid flow or propulsion are often found to exhibit a collective wave...
Motile cilia can produce net fluid flows at low Reynolds number because of their asymmetric motion a...
Biological cilia are often found to exhibit out-of-phase collective metachronal motion. Inspired by ...
In this work we study the effect of metachronal waves on the flow created by magnetically driven pla...
Biological cilia play essential roles in self-propulsion, food capture, and cell transportation by p...
Coordinated nonreciprocal dynamics in biological cilia is essential to many living systems, where th...
In this work we study the effect of metachronal waves on the flow created by magnetically driven pla...
Metachornal waves in magnetic micro-robotic paddles for artificial cilia - DatasetBiological cilia g...
In this work we study the effect of metachronal waves on the flow created by magnetically driven pla...
Magnetic artificial cilia (MAC) are flexible hair-like micro-actuators inspired by biological cilia....
Biological cilia, hairlike organelles on cell surfaces, often exhibit collective wavelike motion kno...
Biological cilia that generate fluid flow or propulsion are often found to exhibit a collective wave...
Motile cilia can produce net fluid flows at low Reynolds number because of their asymmetric motion a...
Biological cilia are often found to exhibit out-of-phase collective metachronal motion. Inspired by ...
In this work we study the effect of metachronal waves on the flow created by magnetically driven pla...
Biological cilia play essential roles in self-propulsion, food capture, and cell transportation by p...
Coordinated nonreciprocal dynamics in biological cilia is essential to many living systems, where th...
In this work we study the effect of metachronal waves on the flow created by magnetically driven pla...
Metachornal waves in magnetic micro-robotic paddles for artificial cilia - DatasetBiological cilia g...
In this work we study the effect of metachronal waves on the flow created by magnetically driven pla...
Magnetic artificial cilia (MAC) are flexible hair-like micro-actuators inspired by biological cilia....