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在线核磁共振引导的实际塑料正交转变

In-line NMR guided orthogonal transformation of real-life plastics.

作者信息

Zhang Mei-Qi, Zhou Yida, Cao Ruochen, Tian Shuheng, Jiao Yuchen, Guo Zhenbo, Wang Maolin, Peng Hongpeng, Sun Bo, Xu Bingjun, Wang Meng, Xu Shutao, Ma Ding

机构信息

Beijing National Laboratory for Molecular Sciences, New Cornerstone Science Laboratory, College of Chemistry and Molecular Engineering, Peking University, Beijing, People's Republic of China.

State Key Laboratory of Catalysis, National Engineering Research Center of Lower-Carbon Catalysis Technology, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, People's Republic of China.

出版信息

Nature. 2025 Jun 25. doi: 10.1038/s41586-025-09088-7.

Abstract

The global crisis of plastic waste accumulation threatens wildlife and ecosystems. Catalytic processes that convert plastic waste into valuable chemicals and fuels offer promising solutions. Recycling or upcycling of real-life plastic mixtures is challenging owing to their diverse composition and structure. Here we propose a product-oriented strategy leveraging the orthogonality in reactivities of different functional groups in plastic mixtures to yield valuable products. This approach involves identifying functional groups followed by converting a selective component in the mixture to valuable products. We use mixtures of polystyrene, polylactic acid, polyurethane, polycarbonate, polyvinyl chloride, polyethylene terephthalate, polyethylene and polypropylene, as well as real-life plastics, to demonstrate the feasibility and effectiveness of the proposed strategy. The diverse physical and chemical properties of these components, which typically hinder direct recovery, offer opportunities for extraction and transformation with the proposed strategy. From a 20-g mixture of real-life plastics, including polystyrene foam, a polylactic acid straw, a polyurethane tube, a polycarbonate mask, a polyvinyl chloride bag, a polyethylene terephthalate bottle, a polyethylene dropper and a polypropylene bottle, we obtained more than 8 separate chemicals: 1.3 g of benzoic acid, 0.5 g of plasticizer, 0.7 g of alanine, 0.7 g of lactic acid, 1.4 g of aromatic amine salt, 2.1 g of bisphenol A, 2.0 g of terephthalic acid and 3.5 g of C-C alkanes. This study reveals the potential for designing transformation strategies for complex plastic waste based on their chemical nature and opens paths for managing end-of-life plastic mixtures.

摘要

全球塑料垃圾堆积危机威胁着野生动物和生态系统。将塑料垃圾转化为有价值的化学品和燃料的催化过程提供了有前景的解决方案。由于实际生活中的塑料混合物成分和结构多样,对其进行回收或升级回收具有挑战性。在此,我们提出一种以产品为导向的策略,利用塑料混合物中不同官能团反应性的正交性来生产有价值的产品。该方法包括识别官能团,然后将混合物中的一种选择性成分转化为有价值的产品。我们使用聚苯乙烯、聚乳酸、聚氨酯、聚碳酸酯、聚氯乙烯、聚对苯二甲酸乙二酯、聚乙烯和聚丙烯的混合物,以及实际生活中的塑料,来证明所提出策略的可行性和有效性。这些成分多样的物理和化学性质通常会阻碍直接回收,但为通过所提出的策略进行提取和转化提供了机会。从包含聚苯乙烯泡沫、聚乳酸吸管、聚氨酯管、聚碳酸酯口罩、聚氯乙烯袋、聚对苯二甲酸乙二酯瓶、聚乙烯滴管和聚丙烯瓶的20克实际生活塑料混合物中,我们获得了8种以上不同的化学品:1.3克苯甲酸、0.5克增塑剂、0.7克丙氨酸、0.7克乳酸、1.4克芳香胺盐、2.1克双酚A、2克对苯二甲酸和3.5克碳 - 碳烷烃。这项研究揭示了基于复杂塑料垃圾的化学性质设计转化策略的潜力,并为管理废弃塑料混合物开辟了道路。

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