National Engineering Laboratory for Hydrometallurgical Cleaner Production Technology, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Angew Chem Int Ed Engl. 2018 Oct 15;57(42):13838-13842. doi: 10.1002/anie.201807622. Epub 2018 Sep 25.
A biomimetic (titin protein molecular structure) strategy is reported for preparing transparent and healable elastomers featuring supertoughness (345 MJ m ) and high tensile strength (44 MPa) after self-healing enabled by hierarchical (single, double, and quadruple) hydrogen-bonding moieties in the polymer backbone. The rigid domain containing hierarchical H-bonds formed with urethane, urea, and 2-ureido-4[1H]-pyrimidinone groups leads to a durable network structure that has enhanced mechanical properties and is also dynamic for rapid self-healing. Healable polymers with hierarchical hydrogen-bonding interactions show excellent recoverability and high energy dissipation owing to the durable interaction between polymer chains. This biomimetic strategy of using hierarchical hydrogen bonds as building blocks is an alternative approach for obtaining dynamic, strong, yet smart self-healing polymers for heavy-duty protection materials and wearable electronics.
一种仿生(肌联蛋白分子结构)策略被用于制备透明且可自修复的弹性体,该弹性体具有超韧性(345MJ/m)和高强度(44MPa),这得益于聚合物主链中分层(单、双和四重)氢键部分的自修复能力。含分层氢键的刚性结构域与氨酯、尿素和 2-脒基-4[1H]-嘧啶酮基团形成,这导致了耐用的网络结构,增强了机械性能,同时也具有快速自修复的动态特性。具有分层氢键相互作用的可修复聚合物由于聚合物链之间的持久相互作用而表现出优异的可恢复性和高能量耗散。使用分层氢键作为构建块的这种仿生策略是获得用于重型保护材料和可穿戴电子设备的动态、强韧且智能自修复聚合物的一种替代方法。