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采用密度泛函理论方法对聚对苯二甲酸乙二酯二聚体热降解机理的洞察。

Insights into the thermal degradation mechanisms of polyethylene terephthalate dimer using DFT method.

作者信息

Huang Jinbao, Meng Hanxian, Luo Xiaosong, Mu Xin, Xu Weiwei, Jin Li, Lai Baosheng

机构信息

School of Mechatronics Engineering, Guizhou Minzu University, Guiyang, 550025, China.

School of Mechatronics Engineering, Guizhou Minzu University, Guiyang, 550025, China.

出版信息

Chemosphere. 2022 Mar;291(Pt 2):133112. doi: 10.1016/j.chemosphere.2021.133112. Epub 2021 Nov 29.

Abstract

The thermal degradation mechanisms of polyethylene terephthalate (PET) dimer were studied by the B3P86 density functional theory (DFT) approach at 6-31++G (d, p) base set in this paper. Seven possible reaction paths were designed and analyzed, and the thermodynamic parameters for all reactions were computed. The calculated results indicate that the bond dissociation energy values (BDEs) of C-C bonds on the main-chain are the smallest, followed by those of C-O bonds. The kinetics analysis indicates that the concerted reactions are obviously liable to occur rather than radical reactions in the initial thermal decomposition process. In the processes of initial reactions, all concerted reactions occurred by six-membered cyclic transition states (TSs) are more prone to carry out than those happened by four-membered cyclic transition states. The research results show that the primary products of PET dimer pyrolysis are terephthalic acid, vinyl terephthalate, CHCHO and divinyl terephthalate. CHCHO is mainly formed by a concerted reaction in the initial degradation process, and CO is mainly produced by the decarboxylation via a concerted reaction and CO is mainly produced by the decarbonylation of a radical in secondary degradation.

摘要

本文采用B3P86密度泛函理论(DFT)方法,在6-31++G(d, p)基组下研究了聚对苯二甲酸乙二酯(PET)二聚体的热降解机理。设计并分析了七条可能的反应路径,计算了所有反应的热力学参数。计算结果表明,主链上C-C键的键解离能值(BDEs)最小,其次是C-O键。动力学分析表明,在初始热分解过程中,协同反应明显比自由基反应更容易发生。在初始反应过程中,所有通过六元环过渡态(TSs)发生的协同反应比通过四元环过渡态发生的协同反应更易于进行。研究结果表明,PET二聚体热解的主要产物是对苯二甲酸、对苯二甲酸乙烯酯、CHCHO和对苯二甲酸二乙烯酯。CHCHO主要在初始降解过程中通过协同反应形成,CO主要通过协同反应脱羧产生,而CO主要在二次降解中由自由基脱羰产生。

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