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Progress made in the recycling of waste polyester plastics

2026-05-19View Original

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  According to Sinochem New Network, recently Dr. Cao Jingjing from Jiangnan University, in collaboration with German researchers, successfully developed a low-cost \"unsaturated coordination-deficient zinc oxide nanosheet catalyst\" that is abundant in Earth’s reserves. This catalyst provides a new solution for the efficient and environmentally friendly recycling of waste polyester plastics under mild conditions. The relevant research findings were published in Nature Communications.   Polyester plastics are produced in large quantities each year, but traditional chemical recycling methods suffer from issues such as high energy consumption, equipment corrosion, and difficulties in wastewater treatment. In this study, the team designed zinc oxide catalysts with a special defect structure on their surface. They vividly compare it to a \"molecular scalpel,\" with the surface defect sites acting as highly active \"graspers\" that can preferentially adsorb and activate water and oxygen molecules, thereby precisely breaking the chemical bonds of polyesters in a mild environment of near-neutral aqueous solution, without the need for organic solvents or strong bases.   Experiments show that in an air environment at 190°C, this catalytic system can completely depolymerize polyethylene terephthalate (PET) in just 6 hours, with a selectivity for the target product terephthalic acid exceeding 99%. Furthermore, this catalyst exhibits excellent \"substrate versatility\"; it can efficiently process both ordinary mineral water bottles and used textiles containing impurities such as dyes, maintaining a terephthalic acid recovery rate of over 98%. This technology is also applicable to the highly selective monomer recovery of other polyester wastes. In terms of environmental friendliness, the catalyst maintained stable activity after 5 consecutive cycles of use, and no leaching of harmful zinc ions was detected during the reaction, thereby avoiding secondary pollution. Currently, the research team has completed laboratory-scale up experiments at the 40-gram level, successfully converting waste plastics into high-purity raw materials and regenerating PET.

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