From Polyester Plastics to Diverse Monomers via Low-Energy Upcycling

Lei Ji, Jiaolong Meng, Chengliang Li,Ming Wang,Xuefeng Jiang

ADVANCED SCIENCE(2024)

引用 0|浏览0
暂无评分
摘要
Polyester plastics, constituting over 10% of the total plastic production, are widely used in packaging, fiber, single-use beverage bottles, etc. However, their current depolymerization processes face challenges such as non-broad spectrum recyclability, lack of diversified high-value-added depolymerization products, and crucially high energy consumption. Herein, an efficient strategy is developed for dismantling the compact structure of polyester plastics to achieve diverse monomer recovery. Polyester plastics undergo swelling and decrystallization with a low depolymerization energy barrier via synergistic effects of polyfluorine/hydrogen bonding, which is further demonstrated via density functional theory calculations. The swelling process is elucidated through scanning electron microscopy analysis. Obvious destruction of the crystalline region is demonstrated through X-ray crystal diffractometry curves. PET undergoes different aminolysis efficiently, yielding nine corresponding high-value-added monomers via low-energy upcycling. Furthermore, four types of polyester plastics and five types of blended polyester plastics are closed-loop recycled, affording diverse monomers with exceeding 90% yields. Kilogram-scale depolymerization of real polyethylene terephthalate (PET) waste plastics is successfully achieved with a 96% yield. Polyester plastics undergo swelling and decrystallization with a low depolymerization energy barrier via synergistic effects of polyfluorine/hydrogen bonding by TFA. TFA-treated polyester undergoes different aminolysis, yielding nine corresponding high-added-value chemicals. Furthermore, four polyester plastics and five blended polyester plastics are closed-loop recycled efficiently, Kilogram-scale depolymerization of real mixed PET waste plastics is achieved with 96% yield. image
更多
查看译文
关键词
chemical upcycling,polyester plastics,polyethylene terephthalate,pre-activation,trifluoroacetic acid
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要