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Theoretical studies on glycolysis of poly(ethylene terephthalate) in ionic liquids

机译:聚对苯二甲酸乙二醇酯在离子液体中糖酵解的理论研究

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Ionic liquids (ILs) present superior catalytic performance in the glycolysis of ethylene terephthalate (PET). To investigate the microscopic degradation mechanism of PET, density functional theory (DFT) calculations have been carried out for the interaction between ILs and dimer, which is considered to symbolize PET. We found that hydrogen bonds (H-bonds) play a critical role in the glycolysis process. In this study, 24 kinds of imidazolium-based and tertiary ammonium-based ILs were used to study the effect of different anions and cations on the interaction with PET. Natural bond orbital (NBO) analysis, atoms in molecules (AIM) and reduced density gradient (RDG) approaches were employed to make in-depth study of the nature of the interactions. It is concluded that the interaction of cations with dimer is weaker than that of anions and when the alkyl chain in the cations is replaced by an unsaturated hydrocarbon, the interaction will become stronger. Furthermore, anions play more important roles than cations in the actual interactions with dimer. When the hydrogen of methyl is replaced by hydroxyl or carboxyl, the interaction becomes weak for the amino acid anions and dimer. This work also investigates the interaction between dimer and ion pairs, with the results showing that anions play a key role in forming H-bonds, while cations mainly attack the oxygen of carbonyl and have a π-stacking interaction with dimer. The comprehensive mechanistic study will help researchers in the future to design an efficient ionic liquid catalyst and offer a better understanding of the mechanism of the degradation of PET.
机译:离子液体(ILs)在对苯二甲酸乙二醇酯(PET)的糖酵解中表现出卓越的催化性能。为了研究PET的微观降解机理,已经对IL和二聚体之间的相互作用进行了密度泛函理论(DFT)计算,这被认为是PET的象征。我们发现氢键(氢键)在糖酵解过程中起关键作用。在这项研究中,使用24种咪唑基和叔铵基ILs来研究不同阴离子和阳离子对与PET相互作用的影响。使用自然键轨道(NBO)分析,分子中的原子(AIM)和降低密度梯度(RDG)方法对相互作用的性质进行了深入研究。结论是,阳离子与二聚体的相互作用弱于阴离子,并且当阳离子中的烷基链被不饱和烃取代时,相互作用将变得更强。此外,在与二聚体的实际相互作用中,阴离子比阳离子更重要。当甲基氢被羟基或羧基取代时,氨基酸阴离子和二聚体的相互作用变弱。这项工作还研究了二聚体和离子对之间的相互作用,结果表明,阴离子在形成氢键中起关键作用,而阳离子主要攻击羰基的氧并与二聚体具有π堆积相互作用。全面的机理研究将帮助未来的研究人员设计一种有效的离子液体催化剂,并更好地理解PET的降解机理。

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