Multimodal motion and behavior switching of multistable ciliary walkers

Fuente: arXiv
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Main Authors: Mohanty, Sumit, Baconnier, Paul, Schomaker, Harmannus A. H., Comoretto, Alberto, van Hecke, Martin, Overvelde, Johannes T. B.
Format: Preprint
Published: 2025
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author Mohanty, Sumit
Baconnier, Paul
Schomaker, Harmannus A. H.
Comoretto, Alberto
van Hecke, Martin
Overvelde, Johannes T. B.
author_facet Mohanty, Sumit
Baconnier, Paul
Schomaker, Harmannus A. H.
Comoretto, Alberto
van Hecke, Martin
Overvelde, Johannes T. B.
contents The collective motion of arrays of cilia - tiny, hairlike protrusions - drives the locomotion of numerous microorganisms, enabling multimodal motion and autonomous switching between gaits to navigate complex environments. To endow minimalist centimeter-scale robots with similarly rich dynamics, we introduce millimeter-scale flexible cilia that buckle under the robots weight, coupling multistability and actuation within a single physical mechanism. When placed on a vibrating surface, these ciliary walkers select their propulsion direction through the buckled states of their cilia, allowing multimodal motion and switching between modes in response to perturbations. We first show that bimodal walkers with left-right symmetric cilia can autonomously reverse direction upon encountering obstacles. Next, we demonstrate that walkers with isotropic cilia exhibit both translational and rotational motion and switch between them in response to environmental interactions. At increasing densities, swarms of such walkers collectively transition from predominantly spinning to translational motion. Finally, we show that the shape, placement and number of cilia controls the modes of motion of the walkers. Our results establish a rational, physically grounded strategy for designing minimalist soft robots where complex behaviors emerge from feedback between internal mechanical states and environmental interactions, laying the foundation for autonomous robotic collectives without the need for centralized control.
format Preprint
id arxiv_https___arxiv_org_abs_2512_09840
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Multimodal motion and behavior switching of multistable ciliary walkers
Mohanty, Sumit
Baconnier, Paul
Schomaker, Harmannus A. H.
Comoretto, Alberto
van Hecke, Martin
Overvelde, Johannes T. B.
Soft Condensed Matter
The collective motion of arrays of cilia - tiny, hairlike protrusions - drives the locomotion of numerous microorganisms, enabling multimodal motion and autonomous switching between gaits to navigate complex environments. To endow minimalist centimeter-scale robots with similarly rich dynamics, we introduce millimeter-scale flexible cilia that buckle under the robots weight, coupling multistability and actuation within a single physical mechanism. When placed on a vibrating surface, these ciliary walkers select their propulsion direction through the buckled states of their cilia, allowing multimodal motion and switching between modes in response to perturbations. We first show that bimodal walkers with left-right symmetric cilia can autonomously reverse direction upon encountering obstacles. Next, we demonstrate that walkers with isotropic cilia exhibit both translational and rotational motion and switch between them in response to environmental interactions. At increasing densities, swarms of such walkers collectively transition from predominantly spinning to translational motion. Finally, we show that the shape, placement and number of cilia controls the modes of motion of the walkers. Our results establish a rational, physically grounded strategy for designing minimalist soft robots where complex behaviors emerge from feedback between internal mechanical states and environmental interactions, laying the foundation for autonomous robotic collectives without the need for centralized control.
title Multimodal motion and behavior switching of multistable ciliary walkers
topic Soft Condensed Matter
url https://arxiv.org/abs/2512.09840