环戊二烯
单体
内酯
复分解
共轭体系
共聚物
聚合
热分解
化学
氢键
高分子化学
有机化学
组合化学
材料科学
分子
聚合物
催化作用
作者
Xiaotong Wu,Chun Yang,Jian‐Shu Xi,Changxia Shi,Fu‐Sheng Du,Zichen Li
标识
DOI:10.1002/anie.202404179
摘要
Abstract Chemical recycling of polymers to monomers presents a promising solution to the escalating crisis associated with plastic waste. Despite considerable progress made in this field, the primary efforts have been focused on redesigning new monomers to produce readily recyclable polymers. In contrast, limited research into the potential of seemingly “non‐polymerizable” monomers has been conducted. Herein, we propose a paradigm that leverages a “chaperone”‐assisted strategy to establish closed‐loop circularity for a “non‐polymerizable” α, β‐conjugated lactone, 5,6‐dihydro‐2H‐pyran‐2‐one (DPO). The resulting PDPO, a structural analogue of poly(δ‐valerolactone) (PVL), exhibits enhanced thermal properties with a melting point ( T m ) of 114 °C and a decomposition temperature ( T d,5% ) of 305 °C. Notably, owing to the structural similarity between DPO and δ‐VL, the copolymerization generates semi‐crystalline P(DPO‐ co ‐VL)s irrespective of the DPO incorporation ratio. Intriguingly, the inherent C=C bonds in P(DPO‐ co ‐VL)s enable their convenient post‐functionalization via Michael‐addition reaction. Lastly, PDPO was demonstrated to be chemically recyclable via ring‐closing metathesis (RCM), representing a significant step towards the pursuit of enabling the closed‐loop circularity of “non‐polymerizable” lactones without altering the ultimate polymer structure.
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