Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University, Beijing, 100191, P. R. China.
National Center for Nanoscience and Technology, Beijing, 100191, P. R. China.
Adv Mater. 2018 Dec;30(51):e1804435. doi: 10.1002/adma.201804435. Epub 2018 Oct 17.
Programmable materials that can change their inherent shapes or properties are highly desirable due to their promising applications. However, among various programmable shape-morphing materials, the single control route allows temporary states to recover the unchangeable former state, thus lacking the sophisticated programmability for their shape-encoding behaviors and mechanics. Herein, dual-programmable shape-morphing organohydrogels featuring supramolecular heteronetworks are developed. In the system, the metallo-supramolecular hydrogel framework and micro-organogels featuring semicrystalline comb-type networks independently respond to different stimuli, thereby providing orthogonal dual-switching mechanics and ultrahigh mechanical strength. The supramolecular heteronetworks also possess excellent self-healing properties. More notably, such orthogonal supramolecular heteronetworks demonstrate hierarchical shape morphing performance that far exceeds conventional shape-morphing materials. Utilizing this dual programming strategy of the orthogonal supramolecular heteronetworks, the material's permanent shape can be manipulated in a step-wise shape morphing process, thereby realizing sophisticated shape changes with a high degree of freedom. The organohydrogels can act as a biomimetic smart device for the on-demand control of unidirectional liquid transport. Based on these characteristics, it is anticipated that the supramolecular organohydrogels may serve as adaptive programmable materials for a variety of applications.
可编程材料能够改变其固有形状或属性,由于其具有广阔的应用前景而备受关注。然而,在各种可编程形状变形材料中,单一控制途径允许临时状态恢复到不可改变的原始状态,从而缺乏对其形状编码行为和力学的复杂可编程性。在此,开发了具有超分子杂化网络的双可编程形状变形有机水凝胶。在该体系中,金属超分子水凝胶骨架和具有半结晶梳状网络的微有机凝胶独立响应不同的刺激,从而提供了正交双切换力学和超高机械强度。超分子杂化网络还具有优异的自修复性能。更值得注意的是,这种正交超分子杂化网络表现出分层的形状变形性能,远远超过传统的形状变形材料。利用这种正交超分子杂化网络的双编程策略,可以在逐步的形状变形过程中操纵材料的永久形状,从而实现具有高度自由度的复杂形状变化。该水凝胶可用作仿生智能装置,用于按需控制单向液体传输。基于这些特性,预计超分子有机水凝胶可能成为各种应用的自适应可编程材料。