材料科学
模块化设计
重新使用
聚合物
聚酯纤维
原材料
纳米技术
工艺工程
可扩展性
韧性
可持续生产
复合材料
生产(经济)
废物管理
计算机科学
有机化学
操作系统
化学
经济
宏观经济学
工程类
数据库
作者
Huilin Xie,Guang Xiao,Geng Ren,Guo‐Dong Lu,Chen Wu,Huimei Zhang,Jialei Li,Wenjie Luo,Hongjie Zhang,Weipu Zhu,Qiuquan Cai,Weipu Zhu,Qiuquan Cai
标识
DOI:10.1002/adma.202503881
摘要
Abstract Engineering polyesters, particularly poly(butylene terephthalate) (PBT), are widely used but generate significant waste, with limited recycling options. Existing mechanical and chemical recycling strategies struggle to sustainably and efficiently reuse PBT, resulting in product performance degradation and making the recycling process more costly than the upstream synthesis routes for raw materials. Inspired by DNA editing technologies in molecular biology, a modular molecular editing strategy is proposed to sequentially modify the backbone and end groups of end‐of‐life PBT, transforming it into a high‐performance, sustainable, and 3D‐printable poly(butylene adipate‐ co ‐terephthalate) (PBAT) platform. Unlike traditional commercial PBATs that produce only single components, this platform surpasses them in tensile strength and toughness without requiring additional additives and features programmable properties for diverse applications, including injection‐molded parts, 3D‐printed components, films, packaging, fibers, and fabrics. The industrial scalability of this strategy is validated through successful 100‐L pilot‐scale production. The resulting PBAT allows closed‐loop polymer‐to‐polymer recycling by reintroducing PBT or monomers, thereby enhancing its social sustainability. When recovery is no longer feasible, the materials remain ecologically sustainable through composting, avoiding harmful environmental accumulation. This work achieves a direct polymer‐to‐polymer conversion of end‐of‐life PBT into high‐performance materials, with techno‐economic analysis highlighting both environmental and economic advantages.
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