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模块化手性折纸超材料

Modular chiral origami metamaterials.

作者信息

Zhao Tuo, Dang Xiangxin, Manos Konstantinos, Zang Shixi, Mandal Jyotirmoy, Chen Minjie, Paulino Glaucio H

机构信息

Department of Civil and Environmental Engineering, Princeton University, Princeton, NJ, USA.

Department of Electrical and Computer Engineering, Princeton University, Princeton, NJ, USA.

出版信息

Nature. 2025 Apr;640(8060):931-940. doi: 10.1038/s41586-025-08851-0. Epub 2025 Apr 23.

Abstract

Metamaterials with multimodal deformation mechanisms resemble machines, especially when endowed with autonomous functionality. A representative architected assembly, with tunable chirality, converts linear motion into rotation. These chiral metamaterials with a machine-like dual modality have potential use in areas such as wave manipulation, optical activity related to circular polarization and chiral active fluids. However, the dual motions are essentially coupled and cannot be independently controlled. Moreover, they are restricted to small deformation, that is, strain ≤2%, which limits their applications. Here we establish modular chiral metamaterials, consisting of auxetic planar tessellations and origami-inspired columnar arrays, with decoupled actuation. Under single-degree-of-freedom actuation, the assembly twists between 0° and 90°, contracts in-plane up to 25% and shrinks out-of-plane more than 50%. Using experiments and simulations, we show that the deformation of the assembly involves in-plane twist and contraction dominated by the rotating-square tessellations and out-of-plane shrinkage dominated by the tubular Kresling origami arrays. Moreover, we demonstrate two distinct actuation conditions: twist with free translation and linear displacement with free rotation. Our metamaterial is built on a highly modular assembly, which enables reprogrammable instability, local chirality control, tunable loading capacity and scalability. Our concept provides routes towards multimodal, multistable and reprogrammable machines, with applications in robotic transformers, thermoregulation, mechanical memories in hysteresis loops, non-commutative state transition and plug-and-play functional assemblies for energy absorption and information encryption.

摘要

具有多模态变形机制的超材料类似于机器,特别是当具备自主功能时。一种具有可调手性的代表性架构组件可将直线运动转换为旋转运动。这些具有类似机器双模态的手性超材料在诸如波操纵、与圆偏振相关的光学活性以及手性活性流体等领域具有潜在应用。然而,这两种运动本质上是耦合的,无法独立控制。此外,它们仅限于小变形,即应变≤2%,这限制了它们的应用。在此,我们构建了模块化手性超材料,其由负泊松比平面镶嵌和受折纸启发的柱状阵列组成,具有解耦驱动。在单自由度驱动下,该组件可在0°至90°之间扭转,面内收缩可达25%,面外收缩超过50%。通过实验和模拟,我们表明该组件的变形包括由旋转方形镶嵌主导的面内扭转和收缩以及由管状克雷斯林折纸阵列主导的面外收缩。此外,我们展示了两种不同的驱动条件:自由平移下的扭转和自由旋转下的线性位移。我们的超材料基于高度模块化的组件构建,这使得可重新编程的不稳定性、局部手性控制、可调负载能力和可扩展性成为可能。我们的概念为多模态、多稳态和可重新编程的机器提供了途径,可应用于机器人变压器、温度调节、滞后回线中的机械记忆、非对易状态转换以及用于能量吸收和信息加密的即插即用功能组件。

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