Patel Herit, Chen Jiehao, Hu Yuhang, Erturk Alper
The George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.
The School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.
Sci Rep. 2022 Jul 29;12(1):13033. doi: 10.1038/s41598-022-15453-7.
This paper explores a novel programmable metamaterial using stimuli-responsive hydrogels with a demonstration of bandgap formation and tuning. Specifically, a photo-responsive hydrogel beam that can achieve re-programmable periodicity in geometric and material properties through patterned light irradiation is designed. Hydrogels consist of polymeric networks and water molecules. Many unique properties of hydrogels, including bio-compatibility, stimuli-responsiveness, and low dissipation make them ideal for enabling re-programmable metamaterials for manipulating structural dynamic response and wave propagation characteristics. Bandgap generation and tunability in photo-responsive hydrogel-based metamaterial (in the form of a diatomic phononic chain) as well as the effects of system parameters such as light exposure pattern and photo-sensitive group concentration on the bandgap width and center frequency are systematically studied. In agreement with finite-element model simulations, it is observed that an increase in light exposure region size reduces both the bandgap width and center frequency, while an increase in the concentration of photo-sensitive group increases bandgap width, attenuation and reduces its center frequency. This work unveils the potential of stimuli-response hydrogels as a new class of low-loss soft metamaterials, unlike most other soft materials that are too lossy to sustain and exploit wave phenomena.
本文探索了一种使用刺激响应水凝胶的新型可编程超材料,并展示了带隙的形成和调谐。具体而言,设计了一种光响应水凝胶梁,它可以通过图案化光照射在几何和材料特性方面实现可重新编程的周期性。水凝胶由聚合物网络和水分子组成。水凝胶的许多独特特性,包括生物相容性、刺激响应性和低损耗,使其成为实现用于操纵结构动态响应和波传播特性的可重新编程超材料的理想选择。系统地研究了基于光响应水凝胶的超材料(以双原子声子链的形式)中的带隙产生和可调性,以及诸如光照图案和光敏基团浓度等系统参数对带隙宽度和中心频率的影响。与有限元模型模拟结果一致,观察到光照区域尺寸的增加会同时减小带隙宽度和中心频率,而光敏基团浓度的增加会增加带隙宽度、衰减并降低其中心频率。这项工作揭示了刺激响应水凝胶作为一类新型低损耗软超材料的潜力,这与大多数其他损耗太大而无法维持和利用波动现象的软材料不同。