Gaussian-preserved, non-volatile shape morphing in three-dimensional microstructures for dual-functional electronic devices

Designing the functional diversification of electronic devices with morphable 3D structures in multistable states remains a challenge. Here, the authors present a Gaussian-preserved shape-morphing system to realize ultrafast shape morphing and non-volatile reconfiguration developing dual-functional...

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Main Authors: Ziao Tian, Borui Xu, Guangchao Wan, Xiaomin Han, Zengfeng Di, Zi Chen, Yongfeng Mei
Format: Article
Language:English
Published: Nature Portfolio 2021-01-01
Series:Nature Communications
Online Access:https://doi.org/10.1038/s41467-020-20843-4
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author Ziao Tian
Borui Xu
Guangchao Wan
Xiaomin Han
Zengfeng Di
Zi Chen
Yongfeng Mei
author_facet Ziao Tian
Borui Xu
Guangchao Wan
Xiaomin Han
Zengfeng Di
Zi Chen
Yongfeng Mei
author_sort Ziao Tian
collection DOAJ
description Designing the functional diversification of electronic devices with morphable 3D structures in multistable states remains a challenge. Here, the authors present a Gaussian-preserved shape-morphing system to realize ultrafast shape morphing and non-volatile reconfiguration developing dual-functional electronic devices, such as switch, actuator, and antenna on microscale.
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spelling doaj.art-6a0d2cec4133451ca6617bef41b63a282022-12-21T22:56:25ZengNature PortfolioNature Communications2041-17232021-01-0112111110.1038/s41467-020-20843-4Gaussian-preserved, non-volatile shape morphing in three-dimensional microstructures for dual-functional electronic devicesZiao Tian0Borui Xu1Guangchao Wan2Xiaomin Han3Zengfeng Di4Zi Chen5Yongfeng Mei6Department of Materials Science, State Key Laboratory of ASIC and Systems, Fudan UniversityDepartment of Materials Science, State Key Laboratory of ASIC and Systems, Fudan UniversityThayer School of Engineering, Dartmouth CollegeThayer School of Engineering, Dartmouth CollegeState Key Laboratory of Functional Materials for Informatics, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of SciencesThayer School of Engineering, Dartmouth CollegeDepartment of Materials Science, State Key Laboratory of ASIC and Systems, Fudan UniversityDesigning the functional diversification of electronic devices with morphable 3D structures in multistable states remains a challenge. Here, the authors present a Gaussian-preserved shape-morphing system to realize ultrafast shape morphing and non-volatile reconfiguration developing dual-functional electronic devices, such as switch, actuator, and antenna on microscale.https://doi.org/10.1038/s41467-020-20843-4
spellingShingle Ziao Tian
Borui Xu
Guangchao Wan
Xiaomin Han
Zengfeng Di
Zi Chen
Yongfeng Mei
Gaussian-preserved, non-volatile shape morphing in three-dimensional microstructures for dual-functional electronic devices
Nature Communications
title Gaussian-preserved, non-volatile shape morphing in three-dimensional microstructures for dual-functional electronic devices
title_full Gaussian-preserved, non-volatile shape morphing in three-dimensional microstructures for dual-functional electronic devices
title_fullStr Gaussian-preserved, non-volatile shape morphing in three-dimensional microstructures for dual-functional electronic devices
title_full_unstemmed Gaussian-preserved, non-volatile shape morphing in three-dimensional microstructures for dual-functional electronic devices
title_short Gaussian-preserved, non-volatile shape morphing in three-dimensional microstructures for dual-functional electronic devices
title_sort gaussian preserved non volatile shape morphing in three dimensional microstructures for dual functional electronic devices
url https://doi.org/10.1038/s41467-020-20843-4
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