Ding Zhao, Cao Xing, Hao Xin-Yu, Ni Yan-Peng
Institute of Functional Textiles and Advanced Materials, Qingdao Key Laboratory of Flame-Retardant Textile Materials, National Engineering Research Center for Advanced Fire-Safety Materials D & A (Shandong), College of Textiles & Clothing, Qingdao University, Qingdao 266071, China.
Polymers (Basel). 2025 May 24;17(11):1458. doi: 10.3390/polym17111458.
To tackle growing resource and environmental challenges, closed-loop chemical recycling of waste PET is gaining significant attention. Methanolysis demonstrates significant industrial potential due to the ease of separation and purification of its depolymerization product, dimethyl terephthalate (DMT). However, conventional methanolysis processes for PET typically require harsh conditions (>200 °C and 2-4 MPa), highlighting the need for more efficient and milder methods. In this work, leveraging Hansen's solubility parameter theory, a bio-based solvent gamma-valerolactone (GVL) was introduced to construct a binary mixed solvent system, enabling highly efficient depolymerization of PET. Through systematic optimization of reaction conditions, an in-depth analysis of the effects of various factors on depolymerization efficiency and kinetics was conducted. The incorporation of GVL markedly enhanced the compatibility between the solvent and PET, thereby significantly improving depolymerization efficiency while effectively lowering the reaction temperature and pressure. Complete depolymerization of PET can be achieved within 2 h at 150 °C under a pressure of 0.9 MPa, with a DMT yield of up to 97.8%. This GVL/methanol depolymerization system exhibits higher efficiency, milder reaction conditions, and substantial advantages in terms of environmental impact and energy consumption indicators. By using the renewable bio-based solvent GVL, this technology aligns with the core principles of green chemistry and provides an efficient, feasible, and innovative pathway for sustainable closed-loop PET recycling.
为应对日益严峻的资源和环境挑战,废聚对苯二甲酸乙二酯(PET)的闭环化学回收正受到广泛关注。甲醇解因其解聚产物对苯二甲酸二甲酯(DMT)易于分离和提纯而展现出巨大的工业潜力。然而,传统的PET甲醇解工艺通常需要苛刻的条件(>200°C和2 - 4 MPa),这凸显了对更高效、更温和方法的需求。在这项工作中,利用汉森溶解度参数理论,引入了生物基溶剂γ-戊内酯(GVL)来构建二元混合溶剂体系,实现了PET的高效解聚。通过系统优化反应条件,深入分析了各种因素对解聚效率和动力学的影响。GVL的加入显著增强了溶剂与PET之间的相容性,从而在有效降低反应温度和压力的同时,显著提高了解聚效率。在150°C、0.9 MPa压力下,2小时内可实现PET的完全解聚,DMT产率高达97.8%。这种GVL/甲醇解聚体系具有更高的效率、更温和的反应条件,在环境影响和能耗指标方面具有显著优势。通过使用可再生的生物基溶剂GVL,该技术符合绿色化学的核心原则,为可持续的PET闭环回收提供了一条高效、可行且创新的途径。