Lu Jia-Hui, Li Zhen, Chen Jia-Hui, Li Shu-Liang, He Jie-Hao, Gu Song, Liu Bo-Wen, Chen Li, Wang Yu-Zhong
School of Chemical Engineering, The Collaborative Innovation Center for Eco-Friendly and Fire-Safety Polymeric Materials (MoE), National Engineering Laboratory of Eco-Friendly Polymeric Materials (Sichuan), State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610064, China.
Research (Wash D C). 2022 Oct 6;2022:9846940. doi: 10.34133/2022/9846940. eCollection 2022.
Covalent adaptable networks (CANs) combine the uniqueness of thermoplastics and thermosets to allow for reprocessability while being covalently crosslinked. However, it is highly desirable but rarely achieved for CANs to simultaneously demonstrate reversibility and mechanical robustness. Herein, we report a feasible strategy to develop a novel epoxy vitrimer (EV) composed of adaptable phosphate networks (APNs), by which the EVs exhibit promising mechanical properties (tensile strength of 62.5 ~ 87.8 MPa and tensile modulus of 1360.1 ~ 2975.3 MPa) under ambient conditions. At elevated temperatures, the topology rearrangement occurs relied on phosphate transesterification, which contributes to the shape memory performance, self-healing, reprocessing, and welding behaviors. Moreover, the incorporation of APNs allows for improvements in anti-ignition and also the inhibition of both heat release and smoke generation to avoid empyrosis, asphyxiation, and toxication during burning, showing expected intrinsic fire safety. Thermal, mechanical properties, and flame retardancy of the reprocessed EVs after hot pressing are very close to those of the original EVs, which is attributed to the sufficient reversibility of APNs. Accordingly, combining the aforementioned features, EVs are manufactured as flame-triggered switches for fire alarms, which symbolizes the innovative development of high-performance covalent adaptable polymeric materials.
共价自适应网络(CANs)结合了热塑性塑料和热固性塑料的独特性,使其在共价交联的同时具备可再加工性。然而,CANs要同时展现出可逆性和机械稳健性是非常理想但很少能实现的。在此,我们报告了一种可行的策略,用于开发一种由自适应磷酸盐网络(APNs)组成的新型环氧类热固性弹性体(EV),通过该策略,EV在环境条件下展现出良好的机械性能(拉伸强度为62.5至87.8兆帕,拉伸模量为1360.1至2975.3兆帕)。在高温下,拓扑重排通过磷酸盐酯交换反应发生,这有助于形状记忆性能、自修复、再加工和焊接行为。此外,APNs的引入还能改善抗燃性,并抑制热量释放和烟雾生成,以避免燃烧过程中的烫伤、窒息和中毒,展现出预期的固有防火安全性。热压后再加工的EV的热性能、机械性能和阻燃性与原始EV非常接近,这归因于APNs具有足够的可逆性。因此,结合上述特性,EV被制作为火灾报警的火焰触发开关,这象征着高性能共价自适应聚合物材料的创新性发展。