Active Brownian particles are capable of taking up energy from their environment and converting it into directed motion; examples range from chemotactic cells and bacteria to artificial micro-swimmers. We have recently demonstrated that Janus particles, i.e.gold-capped colloidal spheres, suspended in a critical binary liquid mixture perform active Brownian motion when illuminated by light. In this paper, we investigate in more detail their swimming mechanism, leading to active Brownian motion. We show that the illumination-borne heating induces a local asymmetric demixing of the binary mixture, generating a spatial chemical concentration gradient which is responsible for the particles self-diffusiophoretic motion. We study this effect as a ...
Active matter systems are capable of taking energy from their environment and converting it into di...
A micron-sized droplet of bromine water immersed in a surfactant-laden oil phase can swim (S. Thutup...
The motion of an artificial microscale swimmer that uses a chemical reaction catalyzed on its own su...
Cataloged from PDF version of article.Active Brownian particles are capable of taking up energy from...
Microorganisms are able to overcome the thermal randomness of their surroundings by harvesting energ...
Microorganisms are able to overcome the thermal randomness of their surroundings by harvesting energ...
Gold-capped Janus particles immersed in a near-critical binary mixture can be propelled using illumi...
Gold-capped Janus particles immersed in a near-critical binary mixture can be propelled using illumi...
We describe the motion of heated particles in a simple liquid, for which we can theoretically derive...
We show active Brownian particles (passive Brownian particles in a bacterial bath) switches between ...
We describe the motion of heated particles in a simple liquid, for which we can theoretically derive...
We describe the motion of heated particles in a simple liquid, for which we can theoretically derive...
Movement is an essential feature of life. It allows organisms to move towards a more favorable envir...
Differently from passive Brownian particles, active particles, also known as self-propelled Brownian...
The motion of microscopic objects is strongly affected by their surrounding environment. In quiescen...
Active matter systems are capable of taking energy from their environment and converting it into di...
A micron-sized droplet of bromine water immersed in a surfactant-laden oil phase can swim (S. Thutup...
The motion of an artificial microscale swimmer that uses a chemical reaction catalyzed on its own su...
Cataloged from PDF version of article.Active Brownian particles are capable of taking up energy from...
Microorganisms are able to overcome the thermal randomness of their surroundings by harvesting energ...
Microorganisms are able to overcome the thermal randomness of their surroundings by harvesting energ...
Gold-capped Janus particles immersed in a near-critical binary mixture can be propelled using illumi...
Gold-capped Janus particles immersed in a near-critical binary mixture can be propelled using illumi...
We describe the motion of heated particles in a simple liquid, for which we can theoretically derive...
We show active Brownian particles (passive Brownian particles in a bacterial bath) switches between ...
We describe the motion of heated particles in a simple liquid, for which we can theoretically derive...
We describe the motion of heated particles in a simple liquid, for which we can theoretically derive...
Movement is an essential feature of life. It allows organisms to move towards a more favorable envir...
Differently from passive Brownian particles, active particles, also known as self-propelled Brownian...
The motion of microscopic objects is strongly affected by their surrounding environment. In quiescen...
Active matter systems are capable of taking energy from their environment and converting it into di...
A micron-sized droplet of bromine water immersed in a surfactant-laden oil phase can swim (S. Thutup...
The motion of an artificial microscale swimmer that uses a chemical reaction catalyzed on its own su...