Numerical study of a microscopic artificial swimmer

Erik Gauger and Holger Stark
Phys. Rev. E 74, 021907 – Published 7 August 2006

Abstract

We present a detailed numerical study of a microscopic artificial swimmer realized recently by Dreyfus et al. in experiments [Dreyfus et al., Nature 437, 862 (2005)]. It consists of an elastic filament composed of superparamagnetic particles that are linked together by DNA strands. Attached to a load particle, the resulting swimmer is actuated by an oscillating external magnetic field so that it performs a nonreciprocal motion in order to move forward. We model the superparamagnetic filament by a bead-spring configuration that resists bending like a rigid rod and whose beads experience friction with the surrounding fluid and hydrodynamic interactions with each other. We show that, aside from finite-size effects, its dynamics is governed by the dimensionless sperm number, the magnitude of the magnetic field, and the angular amplitude of the field’s oscillating direction. Then we study the mean velocity and the efficiency of the swimmer as a function of these parameters and the size of the load particle. In particular, we clarify that the real velocity of the swimmer is influenced by two main factors, namely the shape of the beating filament (determined by the sperm number and the magnetic-field strength) and the oscillation frequency. Furthermore, the load size influences the performance of the swimmer and has to be chosen as a compromise between the largest swimming velocity and the best efficiency. Finally, we demonstrate that the direction of the swimming velocity changes in a symmetry-breaking transition when the angular amplitude of the field’s oscillating direction is increased, in agreement with experiments.

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  • Received 4 March 2006

DOI:https://doi.org/10.1103/PhysRevE.74.021907

©2006 American Physical Society

Authors & Affiliations

Erik Gauger1 and Holger Stark1,2

  • 1Fachbereich Physik, Universität Konstanz, D-78457 Konstanz, Germany
  • 2Max-Planck-Institut für Dynamik und Selbstorganisation, Bunsenstrasse. 10, D-37073 Göttingen, Germany

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Issue

Vol. 74, Iss. 2 — August 2006

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