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Phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance

Active mechanical metamaterials with customizable structures and deformations, active reversible deformation, dynamically controllable shape-locking performance and stretchability are highly suitable for applications in soft robotics and flexible electronics, yet it is challenging to integrate them...

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Autores principales: Zhong, Yiding, Tang, Wei, Xu, Huxiu, Qin, Kecheng, Yan, Dong, Fan, Xujun, Qu, Yang, Li, Zhaoyang, Jiao, Zhongdong, Yang, Huayong, Zou, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10411672/
https://www.ncbi.nlm.nih.gov/pubmed/37565196
http://dx.doi.org/10.1093/nsr/nwad192
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author Zhong, Yiding
Tang, Wei
Xu, Huxiu
Qin, Kecheng
Yan, Dong
Fan, Xujun
Qu, Yang
Li, Zhaoyang
Jiao, Zhongdong
Yang, Huayong
Zou, Jun
author_facet Zhong, Yiding
Tang, Wei
Xu, Huxiu
Qin, Kecheng
Yan, Dong
Fan, Xujun
Qu, Yang
Li, Zhaoyang
Jiao, Zhongdong
Yang, Huayong
Zou, Jun
author_sort Zhong, Yiding
collection PubMed
description Active mechanical metamaterials with customizable structures and deformations, active reversible deformation, dynamically controllable shape-locking performance and stretchability are highly suitable for applications in soft robotics and flexible electronics, yet it is challenging to integrate them due to their mutual conflicts. Here, we introduce a class of phase-transforming mechanical metamaterials (PMMs) that integrate the above properties. Periodically arranging basic actuating units according to the designed pattern configuration and positional relationship, PMMs can customize complex and diverse structures and deformations. Liquid–vapor phase transformation provides active reversible large deformation while a silicone matrix offers stretchability. The contained carbonyl iron powder endows PMMs with dynamically controllable shape-locking performance, thereby achieving magnetically assisted shape locking and energy storing in different working modes. We build a theoretical model and finite element simulation to guide the design process of PMMs, so as to develop a variety of PMMs with different functions suitable for different applications, such as a programmed PMM, reconfigurable antenna, soft lens, soft mechanical memory, biomimetic hand, biomimetic flytrap and self-contained soft gripper. PMMs are applicable to achieve various 2D deformations and 2D-to-3D deformations, and integrate multiple properties, including customizable structures and deformations, active reversible deformation, rapid reversible shape locking, adjustable energy storing and stretchability, which could open a new application avenue in soft robotics and flexible electronics.
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spelling pubmed-104116722023-08-10 Phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance Zhong, Yiding Tang, Wei Xu, Huxiu Qin, Kecheng Yan, Dong Fan, Xujun Qu, Yang Li, Zhaoyang Jiao, Zhongdong Yang, Huayong Zou, Jun Natl Sci Rev Research Article Active mechanical metamaterials with customizable structures and deformations, active reversible deformation, dynamically controllable shape-locking performance and stretchability are highly suitable for applications in soft robotics and flexible electronics, yet it is challenging to integrate them due to their mutual conflicts. Here, we introduce a class of phase-transforming mechanical metamaterials (PMMs) that integrate the above properties. Periodically arranging basic actuating units according to the designed pattern configuration and positional relationship, PMMs can customize complex and diverse structures and deformations. Liquid–vapor phase transformation provides active reversible large deformation while a silicone matrix offers stretchability. The contained carbonyl iron powder endows PMMs with dynamically controllable shape-locking performance, thereby achieving magnetically assisted shape locking and energy storing in different working modes. We build a theoretical model and finite element simulation to guide the design process of PMMs, so as to develop a variety of PMMs with different functions suitable for different applications, such as a programmed PMM, reconfigurable antenna, soft lens, soft mechanical memory, biomimetic hand, biomimetic flytrap and self-contained soft gripper. PMMs are applicable to achieve various 2D deformations and 2D-to-3D deformations, and integrate multiple properties, including customizable structures and deformations, active reversible deformation, rapid reversible shape locking, adjustable energy storing and stretchability, which could open a new application avenue in soft robotics and flexible electronics. Oxford University Press 2023-07-08 /pmc/articles/PMC10411672/ /pubmed/37565196 http://dx.doi.org/10.1093/nsr/nwad192 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of China Science Publishing & Media Ltd. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Zhong, Yiding
Tang, Wei
Xu, Huxiu
Qin, Kecheng
Yan, Dong
Fan, Xujun
Qu, Yang
Li, Zhaoyang
Jiao, Zhongdong
Yang, Huayong
Zou, Jun
Phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance
title Phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance
title_full Phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance
title_fullStr Phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance
title_full_unstemmed Phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance
title_short Phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance
title_sort phase-transforming mechanical metamaterials with dynamically controllable shape-locking performance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10411672/
https://www.ncbi.nlm.nih.gov/pubmed/37565196
http://dx.doi.org/10.1093/nsr/nwad192
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