Niu Peixin, Zhao Zhiying, Zhu Jun, Zhang Zhiyan, Sun Ailing, Wei Liuhe, Li Yuhan
College of Chemistry and Pingyuan Laboratory, Zhengzhou Key Laboratory of Elastic Sealing Materials, Zhengzhou University, Zhengzhou 450001, China.
School of Chemical Engineering, Zhengzhou University, Zhengzhou 450001, China.
J Colloid Interface Sci. 2025 Jan 15;678(Pt B):30-39. doi: 10.1016/j.jcis.2024.08.243. Epub 2024 Sep 2.
Thermoset epoxy resin-based materials are widely used, but their permanent cross-linked network limits their processability and reusability, which can lead to environmental burdens. In this work, by exploiting the weak reactivity of aniline to design appropriate reaction ratios, we achieved a linear link between the epoxy resin and the curing agent. This linear link, along with the crosslinking points provided by the flexibly branched polyurethanes, avoids the inherent brittleness associated with the highly crosslinked network of conventional epoxy resins. As a result, the adhesive exhibits extraordinary improvements in extensibility and toughness. The lap shear strength, tensile strength and elongation at break reach 11.9 MPa, 14.4 MPa and 607 %, respectively. The fracture toughness is as high as 109.6 kJ/m, far beyond the existing epoxy adhesives. The synergistic effect of disulfide bonds and hydrogen bonds confers the adhesive with self-healing and repeatable bonding characteristics. The multi-level hydrogen bonding and appropriate phase separation structure are key to optimizing toughness, resulting in excellent comprehensive performance. The introduction of polyurethane not only improves toughness but also enhances the interfacial bonding force between the adhesive and the substrate, broadening the scope of applications. The prepared high-performance polymers provide new insights into reusable epoxy adhesives.
热固性环氧树脂基材料被广泛使用,但其永久交联网络限制了它们的可加工性和可重复使用性,这可能导致环境负担。在这项工作中,通过利用苯胺的弱反应性来设计合适的反应比例,我们实现了环氧树脂与固化剂之间的线性连接。这种线性连接,连同柔性支化聚氨酯提供的交联点,避免了与传统环氧树脂高度交联网络相关的固有脆性。结果,该粘合剂在延展性和韧性方面表现出非凡的改善。搭接剪切强度、拉伸强度和断裂伸长率分别达到11.9MPa、14.4MPa和607%。断裂韧性高达109.6kJ/m,远远超过现有的环氧粘合剂。二硫键和氢键的协同作用赋予粘合剂自修复和可重复粘接特性。多级氢键和适当的相分离结构是优化韧性的关键,从而产生优异的综合性能。聚氨酯的引入不仅提高了韧性,还增强了粘合剂与基材之间的界面结合力,拓宽了应用范围。制备的高性能聚合物为可重复使用的环氧粘合剂提供了新的见解。