材料科学
石油化工
复合数
工艺工程
固化(化学)
单体
复合材料
聚合物
可再生资源
原材料
压缩成型
可再生能源
造型(装饰)
织物
基质(化学分析)
聚合
片状模塑料
计算机科学
热塑性塑料
作者
Fang He,Shuye Ying,Haiyu Liu,Quan Wan,Yajun Shuai,Jie Wang,Ming Liu,Mingying Yang,Z. Y. Xu
标识
DOI:10.1038/s41467-026-69813-2
摘要
Developing polymer matrices with closed-loop recyclability is a key solution to solve the sustainability issues caused by unrecyclable end-of-life multi-phase composites, and using building blocks from renewable resources rather than petrochemical products presents an attractive option. However, the strategy of first extracting monomers from biomass feedstocks and then polymerizing them is functionality-removed, complexity-increased, and energy-inputted. We report a strategy demonstration from current polymer-monomer-matrix mode to polymer-macromolecule-matrix, based on retaining the advantages in property, processing, and recycling of silk protein. The silk matrix as was its fiber-reinforced composite show spontaneously room-temperature molding and curing capabilities, totally avoiding the use of any additives. The obtained composites also possess high mechanical property and environmental durability. Moreover, the multicycle recyclability of composites could be achieved by a simple room-temperature dissolution procedure, acquiring lossless reinforcing fibers and reusable silk protein.
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