聚氨酯
韧性
耐久性
原材料
持续性
一致性(知识库)
资源效率
材料科学
机械强度
工艺工程
材料效率
化石燃料
工程类
制造工程
法律工程学
资源(消歧)
钥匙(锁)
生化工程
抗压强度
汽车工业
生物量(生态学)
新产品开发
产品(数学)
燃烧
机械工程
纳米技术
复合材料
作者
Hongyu Feng,Yuli Wang,Ting Zhang,Jiangbo Wang,Zhixin Jia,Shaohua Jiang,Xiaoshuai Han
标识
DOI:10.1021/acsmaterialslett.5c01153
摘要
Self-healing polyurethane (SHPU) shows great potential in enhancing materials’ durability and sustainability, yet balancing robust mechanical properties with efficient self-healing under mild conditions remains challenging. Conventional approaches often sacrifice strength or healing ability. This Review focuses on the key role of biomass-derived materials, including lignin, cellulose, chitosan, and vegetable oils, in resolving this conflict. Acting as dynamic network modifiers, multifunctional enhancers, and microstructural regulators, they enable sacrificial bonding, microphase separation, and improved chain mobility. Biomass-based SHPUs can achieve over 90% self-healing efficiency at room temperature while maintaining strength and toughness and even incorporate additional functions like flame retardancy or conductivity. Moreover, biomass enhances sustainability by reducing fossil resource dependence and promoting recyclability. Despite challenges in performance consistency and raw material variability, molecular engineering offers a promising path toward high-performance, sustainable SHPUs for advanced manufacturing and a circular economy.
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