Biological flows at the microscopic scale are important for the transport of nutrients, locomotion, and differentiation. Here, we present a unique approach for creating controlled, surface-induced flows inspired by a ubiquitous biological system, cilia. Our design is based on a collection of self-assembled colloidal rotors that "walk" along surfaces in the presence of a rotating magnetic field. These rotors are held together solely by magnetic forces that allow for reversible assembly and disassembly of the chains. Furthermore, rotation of the magnetic field allows for straightforward manipulation of the shape and motion of these chains. This system offers a simple and versatile approach for designing microfluidic devices as well as for stu...
We study propulsion arising from microscopic colloidal rotors dynamically assembled and driven in a ...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Biological flows at the microscopic scale are important for the transport of nutrients, locomotion, ...
To achieve permanent propulsion of micro-objects in confined fluids is an elusive but challenging go...
To achieve permanent propulsion of micro-objects in confined fluids is an elusive but challenging go...
To achieve permanent propulsion of micro-objects in confined fluids is an elusive but challenging go...
Manipulation of particles in a controllable manner is highly desirable in many applications. Inspire...
We demonstrate advanced fluid manipulations using magnetic polymeric artificial cilia on the walls o...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Biological cilia that generate fluid flow or propulsion are often found to exhibit a collective wave...
The remarkable efficiency and dynamics of micromachines in living organisms have inspired researcher...
We study propulsion arising from microscopic colloidal rotors dynamically assembled and driven in a ...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Biological flows at the microscopic scale are important for the transport of nutrients, locomotion, ...
To achieve permanent propulsion of micro-objects in confined fluids is an elusive but challenging go...
To achieve permanent propulsion of micro-objects in confined fluids is an elusive but challenging go...
To achieve permanent propulsion of micro-objects in confined fluids is an elusive but challenging go...
Manipulation of particles in a controllable manner is highly desirable in many applications. Inspire...
We demonstrate advanced fluid manipulations using magnetic polymeric artificial cilia on the walls o...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Biological cilia that generate fluid flow or propulsion are often found to exhibit a collective wave...
The remarkable efficiency and dynamics of micromachines in living organisms have inspired researcher...
We study propulsion arising from microscopic colloidal rotors dynamically assembled and driven in a ...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...