Li Yupeng, Jin Yong, Zeng Wenhua, Jin Hongyu, Shang Xiang, Zhou Rong
National Engineering Research Center of Clean Technology in Leather Industry, Sichuan University, Chengdu 610065, China.
Key Laboratory of Leather Chemistry and Engineering of Ministry of Education, Sichuan University, Chengdu 610065, China.
ACS Appl Mater Interfaces. 2023 Jul 26;15(29):35469-35482. doi: 10.1021/acsami.3c05699. Epub 2023 Jul 18.
Developing a new generation of ecofriendly water-based polymeric materials that integrate mechanical robustness, fast room-temperature self-healing, adhesive, and fluorescence remains a formidable challenge. Herein, inspired by titin protein, a series of novel waterborne polyurethanes (WPU-CHZ-NAGA) containing irregular 6-fold and diamide hydrogen bonds are synthesized by introducing carbohydrazide (CHZ) and ,-bis(2-hydroxyethyl)-3-amino propionyl glycinamide (HO-NAGA-OH) groups. The representative WPU-CHZ-NAGA exhibits outstanding mechanical properties (tensile strength of 36.58 MPa, tearing energy of 81.2 kJ m, and toughness of 125.82 MJ m) and fast room-temperature self-healing ability with the aid of ethanol (≥90% within 8 h) originated from hierarchical hydrogen bonds. These properties are superior to those of most of the reported room-temperature self-healing polymer materials. Benefiting from plentiful hydrogen bonds, the WPU matrix achieves excellent adhesive properties without heating or adding curing agents. Interestingly, WPU-CHZ-NAGA film emits inherent blue fluorescence due to the aggregation-induced emission effect of tertiary amine groups, and its potential applications in information encryption and anticounterfeiting are further demonstrated. Specially, a eutectic gel strain sensor is also fabricated with WPU-CHZ-NAGA and deep eutectic solvent by a simple physical blending method, which can be used to monitor the movement of human fingers and wrists as well as the change in body temperature. In summary, this work provides new insight into the design and synthesis of multifunctional WPU with fast room-temperature self-healing and high mechanical properties.
开发新一代兼具机械强度、快速室温自修复、粘性和荧光性能的环保型水性聚合物材料仍然是一项艰巨的挑战。在此,受肌联蛋白启发,通过引入 carbohydrazide(CHZ)和β-双(2-羟乙基)-3-氨基丙酰甘氨酰胺(HO-NAGA-OH)基团,合成了一系列含有不规则六重和二酰胺氢键的新型水性聚氨酯(WPU-CHZ-NAGA)。代表性的 WPU-CHZ-NAGA 表现出优异的机械性能(拉伸强度为 36.58 MPa,撕裂能为 81.2 kJ/m²,韧性为 125.82 MJ/m³),并借助源自分级氢键的乙醇在室温下具有快速自修复能力(8 小时内≥90%)。这些性能优于大多数已报道的室温自修复聚合物材料。得益于丰富的氢键,WPU 基体无需加热或添加固化剂即可实现优异的粘性。有趣的是,由于叔胺基团的聚集诱导发光效应,WPU-CHZ-NAGA 薄膜发出固有蓝色荧光,并进一步证明了其在信息加密和防伪方面的潜在应用。特别地,还通过简单的物理共混方法用 WPU-CHZ-NAGA 和深共晶溶剂制备了一种共晶凝胶应变传感器,可用于监测人体手指和手腕的运动以及体温变化。总之,这项工作为设计和合成具有快速室温自修复和高机械性能的多功能 WPU 提供了新的见解。