Wang Yang, Guan Qingbao, Guo Yue, Sun Lijie, Neisiany Rasoul Esmaeely, Guo Xuran, Huang Hongfei, Yang Lei, You Zhengwei
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Institute of Functional Materials, Research Base of Textile Materials for Flexible Electronics and Biomedical Applications (China Textile Engineering Society), Shanghai Engineering Research Center of Nano Biomaterials and Regenerative Medicine, Donghua University, Shanghai 201620, P. R. China.
Department of Polymer Engineering, Hakim Sabzevari University, Sabzevar 9617976487, Iran.
Sci Adv. 2024 Mar 22;10(12):eadk5177. doi: 10.1126/sciadv.adk5177.
The limited capacity of typical materials to resist stress loading, which affects their mechanical performance, is one of the most formidable challenges in materials science. Here, we propose a bone-inspired stress-gaining concept of converting typically destructive stress into a favorable factor to substantially enhance the mechanical properties of elastomers. The concept was realized by a molecular design of dynamic poly(oxime-urethanes) network with mesophase domains. During external loading, the mesophase domains in the condensed state were aligned into more ordered domains, and the dynamic oxime-urethane bonds served as the dynamic molecular locks disassociating and reorganizing to facilitate and fix the mesophase domains. Consequently, the tensile modulus and strength were enhanced by 1744 and 49.3 times after four cycles of mechanical training, respectively. This study creates a molecular concept with stress-gaining properties induced by repeated mechanical stress loading and will inspire a series of innovative materials for diverse applications.
典型材料抵抗应力加载的能力有限,这会影响其力学性能,是材料科学中最严峻的挑战之一。在此,我们提出一种受骨骼启发的应力增益概念,即将通常具有破坏性的应力转化为有利因素,以大幅提高弹性体的力学性能。该概念通过具有中间相域的动态聚(肟 - 聚氨酯)网络的分子设计得以实现。在外部加载过程中,凝聚态的中间相域排列成更有序的域,动态肟 - 聚氨酯键作为动态分子锁解离并重新组织,以促进和固定中间相域。因此,经过四个循环的机械训练后,拉伸模量和强度分别提高了1744倍和49.3倍。本研究创造了一种由反复机械应力加载诱导产生应力增益特性的分子概念,并将激发一系列用于各种应用的创新材料。