The collective phenomena exhibited by artificial active matter systems present novel routes to fabricating out-of-equilibrium microscale assemblies. Here, the crystallization of passive silica colloids into well-controlled 2D assemblies is shown, which is directed by a small number of self-propelled active colloids. The active colloids are titania-silica Janus particles that are propelled when illuminated by UV light. The strength of the attractive interaction and thus the extent of the assembled clusters can be regulated by the light intensity. A remarkably small number of the active colloids is sufficient to induce the assembly of the dynamic crystals. The approach produces rationally designed colloidal clusters and crystals with controll...
Swarms and assemblies are ubiquitous in nature and they can perform complex collective behaviors and...
Colloids are particles with a size on the scale of microns in at least one dimension. The central th...
It is known that light can be used to manipulate and trap colloidal microspheres. What is less known...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
Thanks to a constant energy input, active matter can self-assemble into phases with complex architec...
Thanks to a constant energy input, active matter can self-assemble into phases with complex architec...
Spontaneous formation of colonies of bacteria or flocks of birds are examples of self-organization i...
Collections of interacting active particles, self-propelling or not, have shown remarkable phenomena...
Swarms and assemblies are ubiquitous in nature and they can perform complex collective behaviors and...
Swarms and assemblies are ubiquitous in nature and they can perform complex collective behaviors and...
Colloids are particles with a size on the scale of microns in at least one dimension. The central th...
It is known that light can be used to manipulate and trap colloidal microspheres. What is less known...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
The collective phenomena exhibited by artificial active matter systems present novel routes to fabri...
Thanks to a constant energy input, active matter can self-assemble into phases with complex architec...
Thanks to a constant energy input, active matter can self-assemble into phases with complex architec...
Spontaneous formation of colonies of bacteria or flocks of birds are examples of self-organization i...
Collections of interacting active particles, self-propelling or not, have shown remarkable phenomena...
Swarms and assemblies are ubiquitous in nature and they can perform complex collective behaviors and...
Swarms and assemblies are ubiquitous in nature and they can perform complex collective behaviors and...
Colloids are particles with a size on the scale of microns in at least one dimension. The central th...
It is known that light can be used to manipulate and trap colloidal microspheres. What is less known...