Issue 8, 2020

Cohesive self-organization of mobile microrobotic swarms

Abstract

Mobile microrobots are envisioned to be useful in a wide range of high-impact applications, many of which require cohesive group formation to maintain self-bounded swarms in the absence of confining boundaries. Cohesive group formation relies on a balance between attractive and repulsive interactions between agents. We found that a balance of magnetic dipolar attraction and multipolar repulsion between self-assembled particle chain microrobots enables their self-organization into cohesive clusters. Self-organized microrobotic clusters move above a solid substrate via a hydrodynamic self-propulsion mechanism. Cluster velocity increases with cluster size, resulting from collective hydrodynamic effects. Clustering is promoted by the strength of cohesive interactions and is hindered by the heterogeneities of individual microrobots. The scalability of cohesive interactions allows the formation of larger groups, whose internal spatiotemporal organization undergoes a transition from solid-like ordering to a liquid-like behavior with increasing cluster size. Our work elucidates the dynamics of clustering under cohesive interactions, and presents an approach for addressing the operation of microrobots as localized collectives.

Graphical abstract: Cohesive self-organization of mobile microrobotic swarms

Supplementary files

Article information

Article type
Paper
Submitted
26 Jun 2019
Accepted
22 Jan 2020
First published
23 Jan 2020
This article is Open Access
Creative Commons BY license

Soft Matter, 2020,16, 1996-2004

Cohesive self-organization of mobile microrobotic swarms

B. Yigit, Y. Alapan and M. Sitti, Soft Matter, 2020, 16, 1996 DOI: 10.1039/C9SM01284B

This article is licensed under a Creative Commons Attribution 3.0 Unported Licence. You can use material from this article in other publications without requesting further permissions from the RSC, provided that the correct acknowledgement is given.

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