Do magnetic micro-swimmers move like eukaryotic cells?

Author:

Roper Marcus1,Dreyfus Rémi2,Baudry Jean3,Fermigier Marc4,Bibette Jérôme3,Stone Howard A1

Affiliation:

1. School of Engineering and Applied Sciences, Harvard UniversityCambridge, MA 02138, USA

2. Department of Physics, Center for Soft Matter Research, New York UniversityNew York, NY 10003, USA

3. Laboratoire Colloïdes et Matériaux Divisés, ESPCI75005 Paris, France

4. Laboratoire Physique et Mécanique des Milieux Hétérogènes, ESPCI75005 Paris, France

Abstract

Recent advances in micro-machining allow very small cargos, such as single red blood cells, to be moved by outfitting them with tails made of micrometre-sized paramagnetic particles yoked together by polymer bridges. When a time-varying magnetic field is applied to such a filament, it bends from side to side and propels itself through the fluid, dragging the load behind it. Here, experimental data and a mathematical model are presented showing the dependence of the swimming speed and direction of the magnetic micro-swimmer upon tunable parameters, such as the field strength and frequency and the filament length. The propulsion of the filament arises from the propagation of bending waves between free and tethered ends: here we show that this gives the micro-swimmer a gait that is intermediate between a eukaryotic cell and a waggled elastic rod. Finally, we extract from the model design principles for constructing the fastest swimming micro-swimmer by tuning experimental parameters.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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