Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micrometer scale using asymmetric motion. In this article, we follow a biomimetic approach to design artificial cilia lining the inner surfaces of microfluidic channels with the goal of propelling fluid. The artificial cilia consist of polymer films filled with superparamagnetic nanoparticles, which can mimic the motion of natural cilia when subjected to a rotating magnetic field. To obtain the magnetic field and associated magnetization local to the cilia, we solve the Maxwell equations, from which the magnetic body moments and forces can be deduced. To obtain the ciliary motion, we solve the dynamic equations of motion, which are then fully coupled ...
We demonstrate advanced fluid manipulations using magnetic polymeric artificial cilia on the walls o...
In this paper we quantitatively analyse the performance of magnetically-driven artificial cilia for ...
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...
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...
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...
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...
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...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
We demonstrate advanced fluid manipulations using magnetic polymeric artificial cilia on the walls o...
We demonstrate advanced fluid manipulations using magnetic polymeric artificial cilia on the walls o...
In this paper we quantitatively analyse the performance of magnetically-driven artificial cilia for ...
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...
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...
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...
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...
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...
Natural cilia are hairlike microtubule-based structures that are able to move fluid on the micromete...
We demonstrate advanced fluid manipulations using magnetic polymeric artificial cilia on the walls o...
We demonstrate advanced fluid manipulations using magnetic polymeric artificial cilia on the walls o...
In this paper we quantitatively analyse the performance of magnetically-driven artificial cilia for ...
We demonstrate advanced fluid manipulations using magnetic polymeric artificial cilia on the walls o...