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Large Curvature Self-Folding Method of a Thick Metal Layer for Hinged Origami/Kirigami Stretchable Electronic Devices

A self-folding method that can fold a thick (~10 μm) metal layer with a large curvature (>1 mm(−1)) and is resistant to repetitive folding deformation is proposed. Given the successful usage of hinged origami/kirigami structures forms in deployable structures, they show strong potential for appli...

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Autores principales: Eda, Atsushi, Yasuga, Hiroki, Sato, Takashi, Sato, Yusuke, Suto, Kai, Tachi, Tomohiro, Iwase, Eiji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9227321/
https://www.ncbi.nlm.nih.gov/pubmed/35744521
http://dx.doi.org/10.3390/mi13060907
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author Eda, Atsushi
Yasuga, Hiroki
Sato, Takashi
Sato, Yusuke
Suto, Kai
Tachi, Tomohiro
Iwase, Eiji
author_facet Eda, Atsushi
Yasuga, Hiroki
Sato, Takashi
Sato, Yusuke
Suto, Kai
Tachi, Tomohiro
Iwase, Eiji
author_sort Eda, Atsushi
collection PubMed
description A self-folding method that can fold a thick (~10 μm) metal layer with a large curvature (>1 mm(−1)) and is resistant to repetitive folding deformation is proposed. Given the successful usage of hinged origami/kirigami structures forms in deployable structures, they show strong potential for application in stretchable electronic devices. There are, however, two key difficulties in applying origami/kirigami methods to stretchable electronic devices. The first is that a thick metal layer used as the conductive layer of electronic devices is too hard for self-folding as it is. Secondly, a thick metal layer breaks on repetitive folding deformation at a large curvature. To overcome these difficulties, this paper proposes a self-folding method using hinges on a thick metal layer by applying a meander structure. Such a structure can be folded at a large curvature even by weak driving forces (such as those produced by self-folding) and has mechanical resistance to repetitive folding deformation due to the local torsional deformation of the meander structure. To verify the method, the large curvature self-folding of thick metal layers and their mechanical resistance to repetitive folding deformation is experimentally demonstrated. In addition, an origami/kirigami hybrid stretchable electronic device with light-emitting diodes (LEDs) is fabricated using a double-tiling structure called the perforated extruded Miura-ori.
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spelling pubmed-92273212022-06-25 Large Curvature Self-Folding Method of a Thick Metal Layer for Hinged Origami/Kirigami Stretchable Electronic Devices Eda, Atsushi Yasuga, Hiroki Sato, Takashi Sato, Yusuke Suto, Kai Tachi, Tomohiro Iwase, Eiji Micromachines (Basel) Article A self-folding method that can fold a thick (~10 μm) metal layer with a large curvature (>1 mm(−1)) and is resistant to repetitive folding deformation is proposed. Given the successful usage of hinged origami/kirigami structures forms in deployable structures, they show strong potential for application in stretchable electronic devices. There are, however, two key difficulties in applying origami/kirigami methods to stretchable electronic devices. The first is that a thick metal layer used as the conductive layer of electronic devices is too hard for self-folding as it is. Secondly, a thick metal layer breaks on repetitive folding deformation at a large curvature. To overcome these difficulties, this paper proposes a self-folding method using hinges on a thick metal layer by applying a meander structure. Such a structure can be folded at a large curvature even by weak driving forces (such as those produced by self-folding) and has mechanical resistance to repetitive folding deformation due to the local torsional deformation of the meander structure. To verify the method, the large curvature self-folding of thick metal layers and their mechanical resistance to repetitive folding deformation is experimentally demonstrated. In addition, an origami/kirigami hybrid stretchable electronic device with light-emitting diodes (LEDs) is fabricated using a double-tiling structure called the perforated extruded Miura-ori. MDPI 2022-06-08 /pmc/articles/PMC9227321/ /pubmed/35744521 http://dx.doi.org/10.3390/mi13060907 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Eda, Atsushi
Yasuga, Hiroki
Sato, Takashi
Sato, Yusuke
Suto, Kai
Tachi, Tomohiro
Iwase, Eiji
Large Curvature Self-Folding Method of a Thick Metal Layer for Hinged Origami/Kirigami Stretchable Electronic Devices
title Large Curvature Self-Folding Method of a Thick Metal Layer for Hinged Origami/Kirigami Stretchable Electronic Devices
title_full Large Curvature Self-Folding Method of a Thick Metal Layer for Hinged Origami/Kirigami Stretchable Electronic Devices
title_fullStr Large Curvature Self-Folding Method of a Thick Metal Layer for Hinged Origami/Kirigami Stretchable Electronic Devices
title_full_unstemmed Large Curvature Self-Folding Method of a Thick Metal Layer for Hinged Origami/Kirigami Stretchable Electronic Devices
title_short Large Curvature Self-Folding Method of a Thick Metal Layer for Hinged Origami/Kirigami Stretchable Electronic Devices
title_sort large curvature self-folding method of a thick metal layer for hinged origami/kirigami stretchable electronic devices
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9227321/
https://www.ncbi.nlm.nih.gov/pubmed/35744521
http://dx.doi.org/10.3390/mi13060907
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