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Tailoring the multistability of origami-inspired, buckled magnetic structures via compression and creasing

Li, Yi; Avis, Samuel J.; Zhang, Teng; Kusumaatmaja, Halim; Wang, Xueju

Tailoring the multistability of origami-inspired, buckled magnetic structures via compression and creasing Thumbnail


Authors

Yi Li

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Samuel Avis sam.avis@durham.ac.uk
Post Doctoral Research Associate

Teng Zhang

Xueju Wang



Abstract

Origami-inspired multistable structures are gaining increasing interest because of their potential applications in fields ranging from deployable structures to reconfigurable microelectronics. The multistability of such structures is critical for their applications but is challenging to manipulate due to the highly nonlinear deformations and complex configurations of the structures. Here, a comprehensive experimental and computational study is reported to tailor the multistable states of origami-inspired, buckled ferromagnetic structures and their reconfiguration paths. Using ribbon structures as an example, a design phase diagram is constructed as a function of the crease number and compressive strain. As the crease number increases from 0 to 7, the number of distinct stable states first increases and then decreases. The multistability is also shown to be actively tuned by varying the strain from 0% to 40%. Furthermore, analyzing energy barriers for reconfiguration among the stable states reveals dynamic changes in reconfiguration paths with increasing strains. Guided by studies above, diverse examples are designed and demonstrated, from programmable structure arrays to a soft robot. These studies lay out the foundation for the rational design of functional, multistable structures.

Citation

Li, Y., Avis, S. J., Zhang, T., Kusumaatmaja, H., & Wang, X. (2021). Tailoring the multistability of origami-inspired, buckled magnetic structures via compression and creasing. Materials Horizons, 8(12), 3324-3333. https://doi.org/10.1039/d1mh01152a

Journal Article Type Article
Acceptance Date Sep 9, 2021
Online Publication Date Sep 9, 2021
Publication Date Dec 1, 2021
Deposit Date Oct 18, 2021
Publicly Available Date Sep 9, 2022
Journal Materials horizons.
Electronic ISSN 2051-6355
Publisher Royal Society of Chemistry
Peer Reviewed Peer Reviewed
Volume 8
Issue 12
Pages 3324-3333
DOI https://doi.org/10.1039/d1mh01152a

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