Sun Bo, Zou Jiawei, Qiu Weijie, Tian Shuheng, Wang Maolin, Tang Haoyi, Wang Baotieliang, Luan Shifang, Tang Xiaoyan, Wang Meng, Ma Ding
Beijing National Laboratory for Molecular Science, New Cornerstone Science Laboratory, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.
State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, China.
Natl Sci Rev. 2024 Dec 4;12(1):nwae393. doi: 10.1093/nsr/nwae393. eCollection 2025 Jan.
Polyurethanes are an important class of synthetic polymers, widely used in a variety of applications ranging from everyday items to advanced tools in societal infrastructure. Their inherent cross-linked structure imparts exceptional durability and flexibility, yet this also complicates their degradation and recycling. Here we report a heterogeneous catalytic process that combines methanolysis and hydrogenation with a CO/H reaction medium, effectively breaking down PU waste consisting of urethane and ester bonds into valuable intermediates like aromatic diamines and lactones. These intermediates are then converted into functional polymers: polyimide (PI), noted for its exceptional thermal and electrical insulation, and polylactone (P(BL--CL)), a biodegradable alternative to traditional plastics. Both polymers exhibit enhanced performance compared to existing commercial products. This approach not only contributes to the valorization of plastic waste but also opens new avenues for the creation of high-performance materials.
聚氨酯是一类重要的合成聚合物,广泛应用于从日常用品到社会基础设施中的先进工具等各种领域。其固有的交联结构赋予了卓越的耐久性和柔韧性,但这也使其降解和回收变得复杂。在此,我们报道了一种多相催化过程,该过程将甲醇解和氢化与CO/H反应介质相结合,有效地将由聚氨酯和酯键组成的聚氨酯废料分解为有价值的中间体,如芳香族二胺和内酯。然后,这些中间体被转化为功能聚合物:以其卓越的热绝缘和电绝缘性能而闻名的聚酰亚胺(PI),以及作为传统塑料可生物降解替代品的聚内酯(P(BL--CL))。与现有的商业产品相比,这两种聚合物都表现出了增强的性能。这种方法不仅有助于塑料废料的增值利用,并为高性能材料的创造开辟了新途径。