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一种生物基聚(氧杂降冰片烯稠合γ-丁内酯)的闭环化学循环利用

Closed-Loop Chemical Recycling of a Biobased Poly(oxanorbornene-fused γ-butyrolactone).

作者信息

Harsevoort Eva, Cioc Răzvan C, Lutz Martin, Thevenon Arnaud, Bruijnincx Pieter C A

机构信息

Organic Chemistry and Catalysis, Institute for Sustainable and Circular Chemistry, Faculty of Science, Utrecht University, Universiteitsweg 99, 3584 CG Utrecht, The Netherlands.

Structural Biochemistry, Bijvoet Centre for Biomolecular Research, Faculty of Science, Utrecht University, Universiteitsweg 99, 3584 CG Utrecht, The Netherlands.

出版信息

J Am Chem Soc. 2024 Dec 18;146(50):34628-34637. doi: 10.1021/jacs.4c12678. Epub 2024 Dec 2.

Abstract

New polymers, properly designed for end-of-life and efficiently formed from renewable carbon, are key to the transition to a more sustainable circular plastics economy. Ring-opening polymerization (ROP) of bicyclic lactones is a promising method for the production of intrinsically recyclable polyesters, but most lactone monomers lack an efficient synthesis route from biobased starting materials, even though this is essential to sustainably account for material loss during the life cycle. Herein, we present the exceptionally rapid and controlled polymerization of a fully biobased tricyclic oxanorbornene-fused γ-butyrolactone monomer (). Polyester P() was formed in low dispersity (D̵ = 1.2-1.3) and controllable molecular weight up to = 76.8 kg mol and exhibits a high glass transition temperature ( = 120 °C). The orthogonal olefin and lactone functionalities offer access to a wide range of promising materials, as showcased by postpolymerization modification by hydrogenation of the olefin, which increased polymer thermal stability by over 100 °C. Next to rapid hydrolytic degradation and solvolysis, the poly(oxanorbornene-fused γ-butyrolactone) could be cleanly chemically recycled back to the monomer (CRM), in line with its favorable ceiling temperature () of 73 °C. The density functional theory (DFT)-computed Δ° of ring-opening with methanol of γ-butyrolactone-based monomers provided a model to predict , and the DFT-computed and X-ray crystal structure-derived structural parameters of , hydrogenated analogue , and regioisomer offered insights into the structural descriptors that cause the high polymerizability of , which is key to establishing structure-property relations.

摘要

经过合理设计以实现生命周期末期目标并由可再生碳高效合成的新型聚合物,是向更可持续的循环塑料经济转型的关键。双环内酯的开环聚合(ROP)是生产本质上可回收聚酯的一种有前景的方法,但大多数内酯单体缺乏从生物基原料出发的高效合成路线,尽管这对于在生命周期中可持续地考虑材料损失至关重要。在此,我们展示了一种完全生物基的三环氧化降冰片烯稠合γ-丁内酯单体()的异常快速且可控的聚合反应。聚酯P()以低分散度(D̵ = 1.2 - 1.3)形成,分子量可控,最高可达 = 76.8 kg/mol,并且具有高玻璃化转变温度( = 120 °C)。正交的烯烃和内酯官能团提供了获得多种有前景材料的途径,烯烃氢化的后聚合改性展示了这一点,它使聚合物热稳定性提高了超过100 °C。除了快速的水解降解和溶剂解之外,聚(氧化降冰片烯稠合γ-丁内酯)可以干净地化学回收为单体(CRM),这与其73 °C的有利平衡温度()一致。密度泛函理论(DFT)计算的基于γ-丁内酯的单体与甲醇开环的Δ°提供了一个预测的模型,并且DFT计算以及X射线晶体结构推导的、氢化类似物和区域异构体的结构参数,为导致高聚合性的结构描述符提供了见解,这是建立结构 - 性能关系的关键。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe70/11664497/4db61a324904/ja4c12678_0007.jpg

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