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探寻聚氨酯连接键的致命弱点——从能量角度分析

Searching for the Achilles' Heel of Urethane Linkage-An Energetic Perspective.

作者信息

Horváth Tamás, Kecskés Karina, Jordán Csábrádiné Anikó, Szőri-Dorogházi Emma, Viskolcz Béla, Szőri Milán

机构信息

Institute of Chemistry, University of Miskolc, Miskolc-Egyetemváros A/2, H-3515 Miskolc, Hungary.

Higher Education and Industrial Cooperation Centre, University of Miskolc, H-3515 Miskolc, Hungary.

出版信息

Polymers (Basel). 2024 Apr 17;16(8):1126. doi: 10.3390/polym16081126.

Abstract

A sudden increase in polyurethane (PU) production necessitates viable recycling methods for the waste generated. PU is one of the most important plastic materials with a wide range of applications; however, the stability of the urethane linkage is a major issue in chemical recycling. In this work, termination reactions of a model urethane molecule, namely methyl N-phenyl carbamate (MPCate), are investigated using G3MP2B3 composite quantum chemical method. Our main goal was to gain insights into the energetic profile of urethane bond termination and find an applicable chemical recycling method. Hydrogenation, hydrolysis, methanolysis, peroxidation, glycolysis, ammonolysis, reduction with methylamine and termination by dimethyl phosphite were explored in both gas and condensed phases. Out of these chemicals, degradation by H, HO and CHNH revealed promising results with lower activation barriers and exergonic pathways, especially in water solvation. Implementing these effective PU recycling methods can also have significant economic benefits since the obtained products from the reactions are industrially relevant substances. For example, aniline and dimethyl carbonate could be reusable in polymer technologies serving as potential methods for circular economy. As further potential transformations, several ionizations of MPCate were also examined including electron capture and detachment, protonation/deprotonation and reaction with OH. Alkaline digestion against the model urethane MPCate was found to be promising due to the relatively low activation energy. In an ideal case, the transformation of the urethane bond could be an enzymatic process; therefore, potential enzymes, such as lipoxygenase, were also considered for the catalysis of peroxidation, and lipases for methanolysis.

摘要

聚氨酯(PU)产量的突然增加使得有必要为产生的废物开发可行的回收方法。PU是最重要的塑料材料之一,具有广泛的应用;然而,氨基甲酸酯键的稳定性是化学回收中的一个主要问题。在这项工作中,使用G3MP2B3复合量子化学方法研究了模型氨基甲酸酯分子N-苯基氨基甲酸甲酯(MPCate)的终止反应。我们的主要目标是深入了解氨基甲酸酯键终止的能量概况,并找到一种适用的化学回收方法。在气相和凝聚相中探索了氢化、水解、甲醇解、过氧化、二醇解、氨解、用甲胺还原以及用亚磷酸二甲酯终止反应。在这些化学物质中,H、HO和CHNH的降解显示出有希望的结果,具有较低的活化能垒和放能途径,特别是在水溶剂化中。实施这些有效的PU回收方法也可以带来显著的经济效益,因为反应得到的产物是具有工业相关性的物质。例如,苯胺和碳酸二甲酯可在聚合物技术中重复使用,作为循环经济的潜在方法。作为进一步的潜在转化,还研究了MPCate的几种电离,包括电子捕获和脱离、质子化/去质子化以及与OH的反应。发现针对模型氨基甲酸酯MPCate的碱性消化由于活化能相对较低而具有前景。在理想情况下,氨基甲酸酯键的转化可能是一个酶促过程;因此,还考虑了潜在的酶,如脂氧合酶用于过氧化催化,脂肪酶用于甲醇解催化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/abcc/11053941/f30466582e2f/polymers-16-01126-g001.jpg

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