超材料
模块化设计
限制
计算机科学
材料科学
纳米技术
刚度
声学超材料
机械设计
概念证明
拓扑(电路)
集合(抽象数据类型)
计算机体系结构
电子工程
设计策略
设计方法
网络拓扑
辅助
机械系统
分叉
作者
Xi Kang,Youhang Zhang,Hong‐Shuang Fan,Zhiming Xu,Yue Dong,Bing Li
标识
DOI:10.1002/advs.202517921
摘要
Metamaterials have attracted significant attention due to their unconventional mechanical properties. However, a major limitation of conventional metamaterials lies in the fixed and uniform microstructures, limiting their ability to realize diverse functionalities. Inspired by the network chemistry of the 3D architectures of metal-organic frameworks (MOFs) crystal networks, a reconfigurable design strategy based on polyhedral origami patterns is proposed. Leveraging intrinsic bifurcation behavior, a set of modular units with tunable stiffness and adjustable Poisson's ratios is developed. Both experimental and theoretical investigations confirm that these modules exhibit diverse mechanical responses, including quasi-zero, positive stiffness, bistability, and a continuously tunable Poisson's ratio spanning negative to positive values. By assembling modules in desirable modes, a programmable metamaterial network with customizable mechanical performance is presented. This approach provides a versatile platform for designing multifunctional mechanical metamaterials and offers practical value in applications such as advanced shock-absorbing systems, enhancing versatility and adaptability.
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