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In pursuit of propulsion at the nanoscale

Soft Matter · 2010 · Vol. 6(4) · pp. 726–726
Stephen J. EbbensJonathan R. Howse

Abstract

This review describes recent developments in self-propelling nano- and micro-scale swimming devices. The ability of these devices to transport nano-scale components in a fluidic environment is demonstrated. Furthermore, the adaptations needed for these devices to meet biological transport challenges such as targeted drug delivery are highlighted. Particular emphasis is placed on describing autonomously powered devices driven by asymmetrical chemical reactions. Methods to control the speed and direction of such swimming devices using external fields are described, and contrasted to recent demonstrations of statistical autonomous migrations and organisations driven by chemical gradients, inter swimmer interactions and external photo-stimulus. Finally the challenges and advantages of converting other nature inspired swimming mechanisms into realistic artificial self-powered devices are considered.

Micro and Nano RoboticsMolecular Communication and NanonetworksModular Robots and Swarm IntelligencePropulsionNanotechnologyComputer scienceFluidicsBiomimeticsMicrofluidicsNanoroboticsNanoscopic scaleAerospace engineeringEngineering

Funding

  • Engineering and Physical Sciences Research Council
Citations
622
FWCI
42.40
field-weighted impact
References
53
Percentile
100%
vs. same field & year
Citations per year
Cited by
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References
Life at low Reynolds number
American Journal of Physics · 1977 · 4,259 citations
Designing phoretic micro- and nano-swimmers
New Journal of Physics · 2007 · 624 citations
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