4.8 Article

Swimming by reciprocal motion at low Reynolds number

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NATURE COMMUNICATIONS
卷 5, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/ncomms6119

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资金

  1. European Research Council under the ERC Grant agreement Chiral MicroBots [278213]
  2. Technion Autonomous Systems Program (TASP)
  3. German Israeli Foundation (GIF)
  4. Israel Ministry for Immigrant Absorption
  5. Deutsche Forschungsgemeinschaft (DFG), project DFG (NV) [TU 102/43-1]
  6. project DFG [FI 1966/1-1]

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Biological microorganisms swim with flagella and cilia that execute nonreciprocal motions for low Reynolds number (Re) propulsion in viscous fluids. This symmetry requirement is a consequence of Purcell's scallop theorem, which complicates the actuation scheme needed by microswimmers. However, most biomedically important fluids are non-Newtonian where the scallop theorem no longer holds. It should therefore be possible to realize a microswimmer that moves with reciprocal periodic body-shape changes in non-Newtonian fluids. Here we report a symmetric 'micro-scallop', a single-hinge microswimmer that can propel in shear thickening and shear thinning (non-Newtonian) fluids by reciprocal motion at low Re. Excellent agreement between our measurements and both numerical and analytical theoretical predictions indicates that the net propulsion is caused by modulation of the fluid viscosity upon varying the shear rate. This reciprocal swimming mechanism opens new possibilities in designing biomedical microdevices that can propel by a simple actuation scheme in non-Newtonian biological fluids.

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