Dynamic Bonds Facilitate the Microstructural Adaptation of Polyurethane to Attain Ultrahigh Fracture Energy
作者:Hangyu Shen, Jing Yang, Junhui Gong, Kai Zhou, Pengrui Cao, Jianfeng Xie, Xinrui Zhang, Rui Yang, Tingmei Wang, Xianqiang Pei, Qihua Wang, Yaoming Zhang · 发表于:ACS Applied Polymer Materials · 年份:2025 · DOI:10.1021/acsapm.5c00487 · 被引用次数:7 · 研究领域:Polymer composites and self-healing、Silicone and Siloxane Chemistry、Supramolecular Chemistry and Complexes
High fracture energy is crucial for engineering polymers, as it enhances safety, durability, and performance. However, the high-strength polymers commonly demanded in the engineering field often exhibit low fracture energy due to limited viscoelastic dissipation. Here, we developed a strategy for fabricating polyurethane that achieves both high strength and exceptionally high fracture energy by incorporating a combination of two extenders: the 4,4′-biphenol (PPDP) contains rigid biphenyl and isophthalic dihydrazide (IPDH) contains hydrazine, facilitating the formation of multiple hydrogen bonds. The synergistic effect of these chain extenders facilitates the reversible reconfiguration of hydrogen bonds, enabling microstructural adaptation during stretching. This process dissipates energy and promotes the growth of hard domains, thereby enhancing the load-bearing capacity of the polyurethane. Additionally, the growth of these hard domains helps to inhibit crack propagation, resulting in a fracture energy of up to 519.7 kJ m –2 for the obtained MPU 0.75 . This work provides a promising strategy that will guide the development of polymers with both high strength and high fracture energy.