Jolly Jason Christopher, Jin Binjie, Jin Lishuai, Lee YoungJoo, Xie Tao, Gonella Stefano, Sun Kai, Mao Xiaoming, Yang Shu
Department of Materials Science and Engineering, University of Pennsylvania, 3231 Walnut Street, Philadelphia, PA, 19103, USA.
State Key Laboratory of Chemical Engineering, Department of Chemical and Biological Engineering, Zhejiang University, 38 Zhe Da Road, Hangzhou, Zhejiang, 310027, China.
Adv Sci (Weinh). 2023 Aug;10(22):e2302475. doi: 10.1002/advs.202302475. Epub 2023 May 28.
Maxwell lattices possess distinct topological states that feature mechanically polarized edge behaviors and asymmetric dynamic responses protected by the topology of their phonon bands. Until now, demonstrations of non-trivial topological behaviors from Maxwell lattices have been limited to fixed configurations or have achieved reconfigurability using mechanical linkages. Here, a monolithic transformable topological mechanical metamaterial is introduced in the form of a generalized kagome lattice made from a shape memory polymer (SMP). It is capable of reversibly exploring topologically distinct phases of the non-trivial phase space via a kinematic strategy that converts sparse mechanical inputs at free edge pairs into a biaxial, global transformation that switches its topological state. All configurations are stable in the absence of confinement or a continuous mechanical input. Its topologically-protected, polarized mechanical edge stiffness is robust against broken hinges or conformational defects. More importantly, it shows that the phase transition of SMPs that modulate chain mobility, can effectively shield a dynamic metamaterial's topological response from its own kinematic stress history, referred to as "stress caching". This work provides a blueprint for monolithic transformable mechanical metamaterials with topological mechanical behavior that is robust against defects and disorder while circumventing their vulnerability to stored elastic energy, which will find applications in switchable acoustic diodes and tunable vibration dampers or isolators.
麦克斯韦晶格具有独特的拓扑状态,其特征是具有机械极化的边缘行为以及由声子带拓扑保护的不对称动态响应。到目前为止,麦克斯韦晶格非平凡拓扑行为的演示仅限于固定配置,或者使用机械连杆实现了可重构性。在此,以由形状记忆聚合物(SMP)制成的广义 kagome 晶格的形式引入了一种整体可变换的拓扑机械超材料。它能够通过一种运动学策略可逆地探索非平凡相空间中拓扑不同的相,该策略将自由边缘对处的稀疏机械输入转换为双轴全局变换,从而切换其拓扑状态。在没有约束或连续机械输入的情况下,所有配置都是稳定的。其拓扑保护的极化机械边缘刚度对铰链断裂或构象缺陷具有鲁棒性。更重要的是,它表明调节链迁移率的 SMP 的相变可以有效地将动态超材料的拓扑响应与其自身的运动应力历史隔离开来,这被称为“应力缓存”。这项工作为具有拓扑机械行为的整体可变换机械超材料提供了蓝图,这种超材料对缺陷和无序具有鲁棒性,同时避免了它们对存储弹性能量的脆弱性,这将在可切换声二极管和可调谐减振器或隔离器中找到应用。