Overcoming Hydrophobicity with Water Enables Ultrafast Hydrolysis of Waste Polyethylene Terephthalate at Very Mild Conditions
Abstract
Abstract Chemical recycling of plastics holds great promise but remains constrained by sustainability issues, with polyethylene terephthalate (PET) epitomizing this challenge. Herein, we introduce a conceptually novel strategy that overcomes PET's intrinsic hydrophobicity by physically re‐engineering the polymer's microstructure to enable ultrafast alkaline hydrolysis under exceptionally mild conditions. We leverage the ability of propylene carbonate (PC)—an inexpensive, commercial, green solvent—to selectively dissolve PET, to thermally induce phase separation, and subsequently act as a carrier for water insertion between polymer chains. Upon complete PC replacement, the water uptake exceeds twice the polymer mass, preventing chain re‐compaction and establishing an interfacial environment that facilitates hydroxyl ion diffusion to ester bonds and depolymerization with minimal alkali consumption. As a result, water‐swollen PET fully depolymerizes (96% TPA yield) at atmospheric pressure within 5 min at 90 or under 2 h at room temperature, vastly outperforming conventional hydrolysis methods. The process achieves a 20‐fold reduction in energy footprint versus direct PET hydrolysis. It performs robustly on challenging, real‐world feedstocks—including textiles and mixed plastic waste—enabling selective depolymerization unaffected by PET crystallinity. A techno‐economic analysis (TEA) confirms energy efficiency and strong economic feasibility, demonstrating overall competitiveness with existing engineered technologies. Beyond PET, the physical mechanism underpinning the strategy offers a scalable and sustainable platform for recycling a wide range of condensation polymers.
Article Details
Authors (8)
Francesco Millucci
Dipartimento di Fisica e Geologia Università di Perugia Perugia I‐06123 Italy
Raimondo Germani
Dipartimento di Chimica Biologia e Biotecnologie Università di Perugia Perugia I‐06123 Italy
Leonardo Colelli
Department of Chemical Engineering Materials Environment “Sapienza” University of Rome Rome I‐00184 Italy
Serena Gabrielli
Chemistry Interdisciplinary Project (ChIP) Scuola di Scienze e Tecnologie Università di Camerino Camerino I‐62032 Italy
Paola Sassi
Dipartimento di Chimica Biologia e Biotecnologie Università di Perugia Perugia I‐06123 Italy
Anna Donnadio
Dipartimento di Scienze Farmaceutiche Università di Perugia Perugia I‐06123 Italy
Martina Conti
CNR-IOM - Istituto Officina Dei Materiali, Consiglio Nazionale Delle Ricerche, Area Science Park, Basovizza, Strada Statale 14, Km 163,5, Trieste 34149, Italy
Silvia Corezzi
Dipartimento di Fisica e Geologia Università di Perugia Perugia I‐06123 Italy