Wang Zhi Jian, Zhu Chao Nan, Hong Wei, Wu Zi Liang, Zheng Qiang
Ministry of Education Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou 310027, China.
Department of Aerospace Engineering, Iowa State University, Ames, IA 50010, USA.
Sci Adv. 2017 Sep 15;3(9):e1700348. doi: 10.1126/sciadv.1700348. eCollection 2017 Sep.
Nature has shown elegant paradigms of smart deformation, which inspired biomimetic systems with controllable bending, folding, and twisting that are significant for the development of soft electronics and actuators. Complex deformations are usually realized by additively incorporating typical structures in selective domains with little interaction. We demonstrate the cooperative deformations of periodically patterned hydrogel sheets, in which neighboring domains mutually interact and cooperatively deform. Nonswelling disc gels are periodically positioned in a high-swelling gel. During the swelling process, the compartmentalized high-swelling gel alternately bends upward or downward to relieve the in-plane compression, but the overall integrated structure remains flat. The synergy between the elastic mismatch and the geometric periodicity selects the outcome pattern. Both experiment and modeling show that various types of cooperative deformation can be achieved by tuning the pattern geometry and gel properties. Different responsive polymers can also be patterned in one composite gel. Under stimulation, reversible transformations between different cooperative deformations are realized. The principle of cooperative deformation should be applicable to other materials, and the patterns can be miniaturized to the micrometer- or nanometer-scale level, providing the morphing materials with advanced functionalities for applications in various fields.
自然界展现了智能变形的精妙范例,这激发了具有可控弯曲、折叠和扭转功能的仿生系统,这些功能对软电子学和致动器的发展具有重要意义。复杂变形通常是通过在选择性区域中累加典型结构来实现的,各结构之间相互作用很小。我们展示了周期性图案化水凝胶片的协同变形,其中相邻区域相互作用并协同变形。非膨胀盘状凝胶周期性地置于高膨胀凝胶中。在膨胀过程中,分隔的高膨胀凝胶交替向上或向下弯曲以缓解面内压缩,但整体集成结构保持平坦。弹性失配与几何周期性之间的协同作用决定了最终的图案。实验和建模均表明,通过调整图案几何形状和凝胶特性可以实现各种类型的协同变形。不同的响应性聚合物也可以在一种复合凝胶中进行图案化。在刺激下,不同协同变形之间可实现可逆转变。协同变形原理应适用于其他材料,并且图案可以缩小到微米或纳米尺度水平,为变形材料提供先进功能,以应用于各个领域。