Issue 9, 2020

On the shape-dependent propulsion of nano- and microparticles by traveling ultrasound waves

Abstract

We address the propulsion mechanism of ultrasound-propelled nano- and microparticles that are exposed to a traveling ultrasound wave. Based on direct computational fluid dynamics simulations, we study the effect of two important aspects of the particle shape on the propulsion: rounded vs. pointed and filled vs. hollow shapes. We also study the flow field generated around such particles. Our results reveal that pointedness leads to an increase of the propulsion speed, whereas it is not significantly affected by hollowness. Furthermore, we show that the flow field near to ultrasound-propelled particles can look similar to the flow field generated by pusher squirmers.

Graphical abstract: On the shape-dependent propulsion of nano- and microparticles by traveling ultrasound waves

Article information

Article type
Paper
Submitted
06 Feb 2020
Accepted
20 Jul 2020
First published
21 Jul 2020
This article is Open Access
Creative Commons BY license

Nanoscale Adv., 2020,2, 3890-3899

On the shape-dependent propulsion of nano- and microparticles by traveling ultrasound waves

J. Voß and R. Wittkowski, Nanoscale Adv., 2020, 2, 3890 DOI: 10.1039/D0NA00099J

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