Li Mei, Shi Yawen, Tang Lei, Ji Na, Zhang Shengbo
School of Environmental Science and Engineering, Tianjin Key Laboratory of Biomass/Wastes Utilization, Tianjin University Tianjin 300350 China
School of Materials Science and Engineering, Smart Sensing Interdisciplinary Science Center, Nankai University Tianjin 300350 China.
Chem Sci. 2025 Aug 25. doi: 10.1039/d5sc04667j.
The escalating global challenge of plastic waste calls for innovative recycling solutions that overcome the high energy requirements of traditional chemical recycling and the inefficiency of enzymatic methods. Here, inspired by the structure of Salen-based molecular catalysts and the hydrolase-mediated degradation mechanism of poly(ethylene terephthalate) (PET), we report a multifunctional Zn-Salen molecular catalyst identified through theoretical screening and experimental validation. This catalyst achieves high PET conversion efficiency under mild conditions with low energy consumption. Mechanistic investigations reveal that its Zn metal site and quaternary ammonium component synergistically promote adsorption, activation, and nucleophilic attack towards the O-C[double bond, length as m-dash]O group in PET a proximity effect, mimicking key features of PET hydrolases. Notably, the synthetic catalyst demonstrates high resistance to external interference, achieving an industrially viable productivity of 75 g L h at = 0.1 M and = 90 °C. This catalyst is also effective for diverse substrates, including real-world PET waste, mixed plastics containing PET, and biodegradable PLA. Techno-economic and environmental analyses indicate that this recycling system can significantly reduce carbon emissions and has potential commercial value.
全球塑料垃圾问题日益严峻,这就需要创新的回收解决方案,以克服传统化学回收所需的高能量以及酶法回收的低效率问题。在此,受基于Salen的分子催化剂结构以及聚对苯二甲酸乙二酯(PET)水解酶介导的降解机制启发,我们报道了一种通过理论筛选和实验验证确定的多功能Zn-Salen分子催化剂。该催化剂在温和条件下以低能耗实现了高PET转化效率。机理研究表明,其锌金属位点和季铵组分协同促进对PET中O-C=O基团的吸附、活化和亲核攻击——一种邻近效应,模仿了PET水解酶的关键特征。值得注意的是,这种合成催化剂表现出对外部干扰的高抗性,在0.1 M和90°C条件下实现了75 g L h的工业可行生产率。该催化剂对多种底物也有效,包括实际的PET废料、含PET的混合塑料以及可生物降解的聚乳酸(PLA)。技术经济和环境分析表明,这种回收系统可显著减少碳排放并具有潜在商业价值。