Influence of Carboxylic Acid Structure on the Kinetics of Polyurethane Foam Acidolysis to Recycled Polyol

JACS Au Pub Date : 2024-08-01 DOI:10.1021/jacsau.4c00495
Zach Westman, Baoyuan Liu, Kelsey Richardson, Madeleine Davis, Dingyuan Lim, Alan L. Stottlemyer, Christopher S. Letko, Nasim Hooshyar, Vojtech Vlcek, Phillip Christopher, Mahdi M. Abu-Omar
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Abstract

Closed-loop recycling of plastics is needed to bridge the gap between the material demands imposed by a growing global population and the depletion of nonrenewable petroleum feedstocks. Here, we examine chemical recycling of polyurethane foams (PUFs), the sixth most produced polymer in the world, through PUF acidolysis via dicarboxylic acids (DCAs) to release recyclable polyols. Acidolysis enables recycling of the polyol component of PUFs to high-quality materials, and while the influence of DCA structure on recycled PUF quality has been reported, there are no reports that examine the influence of DCA structure on the kinetics of polyol release. Here, we develop quantitative relationships between DCA structure and PUF acidolysis function for ∼10 different DCA reagents. PUF acidolysis kinetics were quantified with ∼1 s time resolution using the rate of carbon dioxide (CO2) gas generation, which is shown to occur concomitantly with polyol release. Pseudo-zeroth-order rate constants were measured as a function of DCA composition, reaction temperature, and DCA concentration, and apparent activation barriers were extracted. Our findings demonstrate that DCA carboxyl group proximity and phase of transport are descriptors of PUF acidolysis rates, rather than expected descriptors like pKa. DCAs with closer proximity acid groups exhibited faster PUF acidolysis rate constants. Furthermore, a shrinking core mechanism effectively describes the kinetic functional form of the kinetics of PUF acidolysis by DCAs. Measurements of acidolysis kinetics for model PUF (M-PUF) and end-of-life PUF (EOL PUF) confirm the applicability of our analysis to postconsumer materials. This work provides insights into the physical and chemical mechanisms controlling acidolysis, which can facilitate the development of efficient closed-loop PUF chemical recycling schemes.

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羧酸结构对聚氨酯泡沫酸解回收多元醇动力学的影响
需要对塑料进行闭环回收利用,以弥补全球人口增长带来的材料需求与不可再生石油原料枯竭之间的差距。在此,我们研究了聚氨酯泡沫(PUF)的化学回收利用,聚氨酯泡沫是世界上产量第六大的聚合物,通过二羧酸(DCA)对聚氨酯泡沫进行酸解,释放出可回收的多元醇。酸解可将 PUF 中的多元醇成分回收利用,制成高质量的材料,虽然已有关于 DCA 结构对回收 PUF 质量影响的报道,但还没有关于 DCA 结构对多元醇释放动力学影响的研究报道。在此,我们针对 10 种不同的 DCA 试剂,研究了 DCA 结构与 PUF 酸解功能之间的定量关系。利用二氧化碳(CO2)气体生成速率对 PUF 酸解动力学进行了定量分析,其时间分辨率为 1 秒。测量了作为 DCA 成分、反应温度和 DCA 浓度函数的伪零阶速率常数,并提取了表观活化障碍。我们的研究结果表明,DCA 羧基邻近度和传输相是 PUF 酸解速率的描述因子,而不是 pKa 等预期描述因子。酸基距离较近的 DCA 表现出更快的 PUF 酸解速率常数。此外,收缩核心机制有效地描述了 DCAs 酸解 PUF 的动力学功能形式。对模型 PUF(M-PUF)和报废 PUF(EOL PUF)的酸解动力学测量证实了我们的分析适用于消费后材料。这项工作深入揭示了控制酸解的物理和化学机制,有助于开发高效的闭环 PUF 化学回收方案。
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