Polymers and Composites Division & Cixi Institute of Biomedical Engineering, Ningbo Institute of Materials Technology and Engineering , Chinese Academy of Sciences , Zhongguan West Road 1219 , Zhenhai District, Ningbo 315201 , People's Republic of China.
ACS Appl Mater Interfaces. 2018 Dec 5;10(48):41724-41731. doi: 10.1021/acsami.8b16402. Epub 2018 Nov 16.
Responsive hydrogel actuators have promising applications in diverse fields. Most hydrogel actuators are limited by slow actuation or shape transformations. This work reports on snap-buckling motivated jumping of thermoresponsive hydrogel bilayers. The bilayers are composed of poly(NIPAM- co-DMAPMA)/clay hydrogel with different lower critical solution temperatures in each layer, and thus undergo slow reversible curling/uncurling at temperature changes. The gels are adhesive to numerous materials including aluminum. The adhesion between the gels and an aluminum ratchet is utilized to constrain the thermoresponsive deformation of the bilayers to store elastic energy. When the accumulated elastic energy overwhelms the gel-aluminum adhesion, snap-buckling takes place to abruptly release the accumulated energy, which motivates the bilayer to jump. The jumping direction, start time, height, and distance are controlled by the geometry of the bilayers or the ratchet. This work paves a novel way for the rapid actuation of responsive hydrogels in a controlled manner and may stimulate the development of novel hydrogel devices.
响应型水凝胶致动器在多个领域具有广阔的应用前景。大多数水凝胶致动器受到缓慢的致动或形状变换的限制。本工作报道了热响应双层水凝胶的基于突跳屈曲的跳跃。双层水凝胶由聚(NIPAM-co-DMAPMA)/粘土水凝胶组成,每层的下临界溶液温度不同,因此在温度变化时会经历缓慢的可逆卷曲/展开。这些凝胶对包括铝在内的多种材料具有粘附性。凝胶与铝棘轮之间的粘附力被用来限制双层水凝胶的热响应变形以储存弹性能量。当累积的弹性能量超过凝胶-铝的粘附力时,突跳屈曲会突然释放累积的能量,从而促使双层水凝胶跳跃。跳跃的方向、开始时间、高度和距离由双层或棘轮的几何形状控制。这项工作为响应型水凝胶的快速、可控致动开辟了新途径,并可能激发新型水凝胶器件的发展。