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  • Invited

Propulsion and interaction of wave-propelled interfacial particles

Daniel M. Harris* and Jack-William Barotta

  • School of Engineering, Center for Fluid Mechanics, Brown University, 184 Hope Street, Providence, Rhode Island 02912, USA

  • *Contact author: daniel_harris3@brown.edu

Phys. Rev. Fluids 10, 100503 – Published 27 October, 2025

DOI: https://doi.org/10.1103/353x-p2dx

Abstract

When a floating body is internally or externally vibrated, its self-generated wavefield can lead to steady propulsion along the interface. In this article, we review several related and recently discovered systems that leverage this propulsion mechanism and interact hydrodynamically with one another via these surface waves. Particles with an onboard oscillatory driver may self-propel by virtue of a fore-aft asymmetric wavefield, a phenomenon with demonstrated relevance to biological and artificial systems across scales. Freely floating particles on a vibrated fluid bath can also self-propel along straight paths, but may also rotate in place or move along curved arcs, depending sensitively on the particle asymmetries and driving parameters. Such surfing particles interact at a distance through their mutual capillary wavefield and exhibit a rich array of collective dynamics. Overall, these accessible, tunable, and visually appealing systems motivate future investigations into a number of outstanding questions in fundamental fluid mechanics, while potentially also informing advances in the fields of active matter, hydrodynamic quantum analogs, and robotics.

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