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可变形拓扑力学超材料。

Transformable topological mechanical metamaterials.

机构信息

Department of Physics, University of Michigan, Ann Arbor, Michigan 48109-1040, USA.

Laboratory of Atomic and Solid State Physics, Cornell University, Ithaca, New York 14853-2501, USA.

出版信息

Nat Commun. 2017 Jan 23;8:14201. doi: 10.1038/ncomms14201.

Abstract

Mechanical metamaterials are engineered materials whose structures give them novel mechanical properties, including negative Poisson's ratios, negative compressibilities and phononic bandgaps. Of particular interest are systems near the point of mechanical instability, which recently have been shown to distribute force and motion in robust ways determined by a nontrivial topological state. Here we discuss the classification of and propose a design principle for mechanical metamaterials that can be easily and reversibly transformed between states with dramatically different mechanical and acoustic properties via a soft strain. Remarkably, despite the low energetic cost of this transition, quantities such as the edge stiffness and speed of sound can change by orders of magnitude. We show that the existence and form of a soft deformation directly determines floppy edge modes and phonon dispersion. Finally, we generalize the soft strain to generate domain structures that allow further tuning of the material.

摘要

机械类超材料是通过结构设计使其具有新颖力学性能的工程材料,包括负泊松比、负压缩率和声子带隙等。特别引人关注的是那些处于力学不稳定性临界点附近的系统,最近的研究表明,这些系统能够以由非平凡拓扑态决定的稳健方式分配力和运动。本文我们讨论了机械类超材料的分类,并提出了一个设计原理,该原理可通过软应变在具有截然不同力学和声学性能的状态之间进行简便且可还原的转换。值得注意的是,尽管这种转变的能量成本较低,但边缘刚度和声速等量可以发生数量级的变化。我们表明,软变形的存在和形式直接决定了柔软边缘模式和声子色散。最后,我们将软应变进行推广,生成了允许进一步调整材料的畴结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e49/5264209/65ad89f22c59/ncomms14201-f1.jpg

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