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Synchronization and self-assembly of free capillary spinners

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arxiv 2410.15228 v2 pith:FXANWQWC submitted 2024-10-19 cond-mat.soft

classification cond-mat.soft
keywords spinnersablecapillarychiralexperimentalrotatesynchronizationsystem
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Chiral active particles are able to draw energy from the environment to self-propel in the form of rotation. We describe an experimental arrangement wherein chiral objects, spinners, floating on the surface of a vibrated fluid rotate due to emitted capillary waves. We observe that pairs of spinners can assemble at quantized distances via the mutually generated wavefield, phase synchronize and, in some circumstances, globally rotate about a point midway between them. A mathematical model based on wave-mediated interactions captures the salient features of the assembly and synchronization while a qualitative argument is able to rationalize global rotations based on interference and radiation stress associated with the wavefield. Extensions to larger collections are demonstrated, highlighting the potential for this tabletop system to be used as an experimental system capable of synchronizing and swarming.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Effects of coupling range on the dynamics of swarmalators

    nlin.AO 2024-11 conditional novelty 6.0 of 10

    A finite-range version of the 1D swarmalator model produces multi-dot synchronized clusters, higher-winding waves, and an active state, with many boundaries derived analytically and checked numerically.

  2. On forced swarmalators that move in higher-dimensional spaces

    nlin.CD 2024-11 conditional novelty 5.0 of 10

    Analytic stability boundaries for pinned, split-pinned, sync-dot, and phase-locked states are derived for forced swarmalators in 2D and 3D periodic domains, extending previous 1D results.

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