材料科学
电容感应
自愈
复合材料
断裂韧性
聚脲
韧性
应变计
断裂(地质)
复合数
纳米技术
生物医学工程
计算机科学
涂层
替代医学
病理
操作系统
医学
作者
Fuyao Sun,Longfei Liu,Tong Liu,Xuebin Wang,Qi Qi,Zusheng Hang,Kai Chen,Jian‐Hua Xu,Jiajun Fu
标识
DOI:10.1038/s41467-023-35810-y
摘要
Abstract Catastrophically mechanical failure of soft self-healing materials is unavoidable due to their inherently poor resistance to crack propagation. Here, with a model system, i.e., soft self-healing polyurea, we present a biomimetic strategy of surpassing trade-off between soft self-healing and high fracture toughness, enabling the conversion of soft and weak into soft yet tough self-healing material. Such an achievement is inspired by vascular smooth muscles, where core-shell structured Galinstan micro-droplets are introduced through molecularly interfacial metal-coordinated assembly, resulting in an increased crack-resistant strain and fracture toughness of 12.2 and 34.9 times without sacrificing softness. The obtained fracture toughness is up to 111.16 ± 8.76 kJ/m2, even higher than that of Al and Zn alloys. Moreover, the resultant composite delivers fast self-healing kinetics (1 min) upon local near-infrared irradiation, and possesses ultra-high dielectric constants (~14.57), thus being able to be fabricated into sensitive and self-healing capacitive strain-sensors tolerant towards cracks potentially evolved in service.
科研通智能强力驱动
Strongly Powered by AbleSci AI