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Morphable 3D Mesostructures and Microelectronic Devices by Multistable Buckling Mechanics

Three-dimensional (3D) structures capable of reversible transformations in their geometrical layouts have important applications across a broad range of areas. Most morphable 3D systems rely on concepts inspired by origami/kirigami or techniques of 3D printing with responsive materials. The developm...

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Detalles Bibliográficos
Autores principales: Fu, Haoran, Nan, Kewang, Bai, Wubin, Huang, Wen, Bai, Ke, Lu, Luyao, Zhou, Chaoqun, Liu, Yunpeng, Liu, Fei, Wang, Juntong, Han, Mengdi, Yan, Zheng, Luan, Haiwen, Zhang, Yijie, Zhang, Yutong, Zhao, Jianing, Cheng, Xu, Li, Moyang, Lee, Jung Woo, Liu, Yuan, Fang, Daining, Li, Xiuling, Huang, Yonggang, Zhang, Yihui, Rogers, John A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5877475/
https://www.ncbi.nlm.nih.gov/pubmed/29379201
http://dx.doi.org/10.1038/s41563-017-0011-3
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author Fu, Haoran
Nan, Kewang
Bai, Wubin
Huang, Wen
Bai, Ke
Lu, Luyao
Zhou, Chaoqun
Liu, Yunpeng
Liu, Fei
Wang, Juntong
Han, Mengdi
Yan, Zheng
Luan, Haiwen
Zhang, Yijie
Zhang, Yutong
Zhao, Jianing
Cheng, Xu
Li, Moyang
Lee, Jung Woo
Liu, Yuan
Fang, Daining
Li, Xiuling
Huang, Yonggang
Zhang, Yihui
Rogers, John A.
author_facet Fu, Haoran
Nan, Kewang
Bai, Wubin
Huang, Wen
Bai, Ke
Lu, Luyao
Zhou, Chaoqun
Liu, Yunpeng
Liu, Fei
Wang, Juntong
Han, Mengdi
Yan, Zheng
Luan, Haiwen
Zhang, Yijie
Zhang, Yutong
Zhao, Jianing
Cheng, Xu
Li, Moyang
Lee, Jung Woo
Liu, Yuan
Fang, Daining
Li, Xiuling
Huang, Yonggang
Zhang, Yihui
Rogers, John A.
author_sort Fu, Haoran
collection PubMed
description Three-dimensional (3D) structures capable of reversible transformations in their geometrical layouts have important applications across a broad range of areas. Most morphable 3D systems rely on concepts inspired by origami/kirigami or techniques of 3D printing with responsive materials. The development of schemes that can simultaneously apply across a wide range of size scales and with classes of advanced materials found in state-of-the-art microsystem technologies remains challenging. Here, we introduce a set of concepts for morphable 3D mesostructures in diverse materials and fully formed planar devices spanning length scales from micrometers to millimeters. The approaches rely on elastomer platforms deformed in different time sequences to elastically alter the 3D geometries of supported mesostructures via non-linear mechanical buckling. Over 20 examples have been experimentally and theoretically investigated, including mesostructures that can be reshaped between different geometries as well as those that can morph into three or more distinct states. An adaptive radio frequency circuit and a concealable electromagnetic device provide examples of functionally reconfigurable microelectronic devices.
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spelling pubmed-58774752018-07-29 Morphable 3D Mesostructures and Microelectronic Devices by Multistable Buckling Mechanics Fu, Haoran Nan, Kewang Bai, Wubin Huang, Wen Bai, Ke Lu, Luyao Zhou, Chaoqun Liu, Yunpeng Liu, Fei Wang, Juntong Han, Mengdi Yan, Zheng Luan, Haiwen Zhang, Yijie Zhang, Yutong Zhao, Jianing Cheng, Xu Li, Moyang Lee, Jung Woo Liu, Yuan Fang, Daining Li, Xiuling Huang, Yonggang Zhang, Yihui Rogers, John A. Nat Mater Article Three-dimensional (3D) structures capable of reversible transformations in their geometrical layouts have important applications across a broad range of areas. Most morphable 3D systems rely on concepts inspired by origami/kirigami or techniques of 3D printing with responsive materials. The development of schemes that can simultaneously apply across a wide range of size scales and with classes of advanced materials found in state-of-the-art microsystem technologies remains challenging. Here, we introduce a set of concepts for morphable 3D mesostructures in diverse materials and fully formed planar devices spanning length scales from micrometers to millimeters. The approaches rely on elastomer platforms deformed in different time sequences to elastically alter the 3D geometries of supported mesostructures via non-linear mechanical buckling. Over 20 examples have been experimentally and theoretically investigated, including mesostructures that can be reshaped between different geometries as well as those that can morph into three or more distinct states. An adaptive radio frequency circuit and a concealable electromagnetic device provide examples of functionally reconfigurable microelectronic devices. 2018-01-29 2018-03 /pmc/articles/PMC5877475/ /pubmed/29379201 http://dx.doi.org/10.1038/s41563-017-0011-3 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms Reprints and permissions information is available online at www.nature.com/reprints.
spellingShingle Article
Fu, Haoran
Nan, Kewang
Bai, Wubin
Huang, Wen
Bai, Ke
Lu, Luyao
Zhou, Chaoqun
Liu, Yunpeng
Liu, Fei
Wang, Juntong
Han, Mengdi
Yan, Zheng
Luan, Haiwen
Zhang, Yijie
Zhang, Yutong
Zhao, Jianing
Cheng, Xu
Li, Moyang
Lee, Jung Woo
Liu, Yuan
Fang, Daining
Li, Xiuling
Huang, Yonggang
Zhang, Yihui
Rogers, John A.
Morphable 3D Mesostructures and Microelectronic Devices by Multistable Buckling Mechanics
title Morphable 3D Mesostructures and Microelectronic Devices by Multistable Buckling Mechanics
title_full Morphable 3D Mesostructures and Microelectronic Devices by Multistable Buckling Mechanics
title_fullStr Morphable 3D Mesostructures and Microelectronic Devices by Multistable Buckling Mechanics
title_full_unstemmed Morphable 3D Mesostructures and Microelectronic Devices by Multistable Buckling Mechanics
title_short Morphable 3D Mesostructures and Microelectronic Devices by Multistable Buckling Mechanics
title_sort morphable 3d mesostructures and microelectronic devices by multistable buckling mechanics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5877475/
https://www.ncbi.nlm.nih.gov/pubmed/29379201
http://dx.doi.org/10.1038/s41563-017-0011-3
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