聚酯纤维
材料科学
相间
控制重构
生物降解
韧性
聚己内酯
可生物降解聚合物
备份
网络拓扑
极限抗拉强度
聚合物
可扩展性
复合材料
计算机科学
相(物质)
共聚物
拓扑(电路)
分层(地质)
动态网络分析
还原(数学)
降级(电信)
动态力学分析
领域(数学分析)
作者
Zi-Yang Fan,Wen-Qian Lian,Gongyi Wei,S He,Shuling Yang,Bo Yin,Rongxuan Bao,Wei Yang
出处
期刊:Macromolecules
[American Chemical Society]
日期:2026-02-17
卷期号:59 (5): 2976-2986
标识
DOI:10.1021/acs.macromol.5c02882
摘要
Recycling biodegradable polyesters holds great potential for integration into future circular material systems, offering sustainable end-of-life solutions with biodegradability as a backup pathway. However, co-recycling mixed biodegradable polyesters remains challenging due to severe molecular-weight reduction and intrinsic incompatibility, which lead to substantial performance deterioration. Here, we present a hierarchical dynamic network reconfiguration strategy that reconstructs both intra- and interphase structures in mixed biodegradable polyesters. This approach integrates Zn 2+ -catalyzed co-alcoholysis with glycerol and subsequent dynamic cross-linking using lignin and isophorone diisocyanate. The lignin-derived nodes generate hierarchical network topologies that not only reconnect the cleaved polymer chains but also form interface networks that refine the phase morphology and enhance interphase stress transfer. For co-recycled poly(butylene adipate- co -terephthalate)/polylactide (70/30, wt/wt), the average dispersed domain size decreases from 3.3 μm in virgin blends to 108 nm, while the dispersed domain/interfacial thickness ratio is reduced from 10.0 to 1.2. The tensile strength and toughness are simultaneously enhanced by factors of up to 2.3 and 16.3, respectively, compared with those of virgin blends. The co-recycled materials also exhibit excellent thermal stability, long-term durability, reprocessability, and light-triggered self-healing capability. Furthermore, the strategy is applicable to diverse polyester mixtures and postconsumer products, providing a scalable and industrially viable route for sustainable co-upcycling and circular management of biodegradable plastics.
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