屈曲
弯曲
梁(结构)
稳健性(进化)
工作(物理)
结构工程
材料科学
物理
机械
数值延拓
棒
联轴节(管道)
搭扣
经典力学
利用
执行机构
多稳态
蛋白质丝
正常模式
推进
托换
工程类
对称性破坏
纳米技术
纯弯曲
动力学(音乐)
抗弯刚度
夹持器
软机器人
双稳态
航程(航空)
弹性(物理)
约束(计算机辅助设计)
功能(生物学)
作者
Sami C. Al-Izzi,Yao Du,Jonas Veenstra,Richard G. Morris,Anton Souslov,Andreas Carlson,Corentin Coulais,Jack Binysh
标识
DOI:10.1073/pnas.2531723123
摘要
Active filaments are a workhorse for propulsion and actuation across biology, soft robotics, and mechanical metamaterials. However, artificial active rods suffer from limited robustness and adaptivity because they rely on external control, or are tethered to a substrate. Here, we bypass these constraints by demonstrating that nonreciprocal interactions lead to large-scale unidirectional dynamics in free-standing slender structures. By coupling the bending modes of a buckled beam antisymmetrically, we transform the multistable dynamics of elastic snap-through into persistent cycles of shape change. In contrast to the critical point underpinning beam buckling, this transition to self-snapping is mediated by a critical exceptional point, at which bending modes simultaneously become unstable and degenerate. Upon environmental perturbation, our active filaments exploit self-snapping for a range of functionality including crawling, digging, and walking. Our work advances critical exceptional physics as a guiding principle for programming instabilities into functional active materials.
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