Issue 19, 2019

Magnetically-actuated artificial cilium: a simple theoretical model

Abstract

We propose a theoretical model for a magnetically-actuated artificial cilium in a fluid environment and investigate its dynamical behaviour, using both analytical calculations and numerical simulations. The cilium consists of a spherical soft magnet, a spherical hard magnet, and an elastic spring that connects the two magnetic components. Under a rotating magnetic field, the cilium exhibits a transition from phase-locking at low frequencies to phase-slipping at higher frequencies. We study the dynamics of the magnetic cilium in the vicinity of a wall by incorporating its hydrodynamic influence, and examine the efficiency of the actuated cilium in pumping viscous fluids. This cilium model can be helpful in a variety of applications such as transport and mixing of viscous solutions at small scales and fabricating microswimmers.

Graphical abstract: Magnetically-actuated artificial cilium: a simple theoretical model

Supplementary files

Article information

Article type
Paper
Submitted
18 Dec 2018
Accepted
17 Mar 2019
First published
19 Mar 2019
This article is Open Access
Creative Commons BY license

Soft Matter, 2019,15, 3864-3871

Magnetically-actuated artificial cilium: a simple theoretical model

F. Meng, D. Matsunaga, J. M. Yeomans and R. Golestanian, Soft Matter, 2019, 15, 3864 DOI: 10.1039/C8SM02561D

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