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狄尔斯-阿尔德环戊二烯热塑性塑料的合成与热选择性回收利用

Synthesis and Thermo-Selective Recycling of Diels-Alder Cyclopentadiene Thermoplastics.

作者信息

Tran Thi M, Read de Alaniz Javier

机构信息

Department of Chemistry and Biochemistry, University of California, Santa Barbara, California 93106, United States.

出版信息

J Am Chem Soc. 2024 Jul 31;146(30):20972-20981. doi: 10.1021/jacs.4c05952. Epub 2024 Jul 23.

Abstract

Catalyst-free and reversible step-growth Diels-Alder (DA) polymerization has a wide range of applications in polymer synthesis and is a promising method for fabricating recyclable thermoplastics. The effectiveness of polymerization and depolymerization relies on the chemical building blocks, often utilizing furan as the diene and maleimide as the dienophile. Compared to the traditional diene-dienophile or two-component approach that requires precise stoichiometry, cyclopentadiene (Cp) can serve dual roles via self-dimerization. This internally balanced platform offers a route to access high-molecular-weight polymers and a dynamic handle for polymer recycling, which has yet to be explored. Herein, through a reactivity investigation of different telechelic Cp derivatives, the uncontrolled cross-linking of Cp was addressed, revealing the first successful DA homopolymerization. To demonstrate the generality of our methodology, we synthesized and characterized six Cp homopolymers with backbones derived from common thermoplastics, such as poly(dimethylsiloxane), hydrogenated polybutadiene, and ethylene phthalate. Among these materials, the hydrogenated polybutadiene-Cp analog can be thermally depolymerized ( = 68 to 23 kDa) and repolymerized to the parent polymer ( = 68 kDa) under solvent- and catalyst-free conditions. This process was repeated over three cycles without intermediate purification, confirming the efficient thermo-selective recyclability. The varied degradable properties of the other four Cp-incorporated thermoplastics were also examined. Overall, this work provides a general methodology for accessing a new class of reversible homopolymers, potentially expanding the design and construction of sustainable thermoplastics.

摘要

无催化剂且可逆的逐步增长狄尔斯-阿尔德(DA)聚合在聚合物合成中具有广泛应用,是制备可回收热塑性塑料的一种有前景的方法。聚合和解聚的有效性依赖于化学结构单元,通常使用呋喃作为双烯体,马来酰亚胺作为亲双烯体。与传统的需要精确化学计量比的双烯体-亲双烯体或双组分方法相比,环戊二烯(Cp)可通过自二聚作用发挥双重作用。这个内部平衡的平台为获得高分子量聚合物提供了一条途径,也为聚合物回收提供了一个动态手段,而这一点尚未得到探索。在此,通过对不同遥爪Cp衍生物的反应性研究,解决了Cp的无控制交联问题,揭示了首次成功的DA均聚反应。为了证明我们方法的通用性,我们合成并表征了六种具有源自常见热塑性塑料(如聚二甲基硅氧烷、氢化聚丁二烯和邻苯二甲酸乙烯酯)主链的Cp均聚物。在这些材料中,氢化聚丁二烯-Cp类似物在无溶剂和无催化剂的条件下可热解聚(从68 kDa降至23 kDa)并重新聚合成母体聚合物(68 kDa)。这个过程在不进行中间纯化的情况下重复了三个循环,证实了高效的热选择性可回收性。还研究了其他四种含Cp热塑性塑料的不同降解性能。总体而言,这项工作为获得一类新型可逆均聚物提供了一种通用方法,有可能扩展可持续热塑性塑料的设计和构建。

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