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愈创木酚和邻苯二酚热分解动力学的理论研究

Theoretical Study on the Kinetics of Thermal Decomposition of Guaiacol and Catechol.

作者信息

Furutani Yuki, Dohara Yuki, Kudo Shinji, Hayashi Jun-Ichiro, Norinaga Koyo

机构信息

Department of Chemical Systems Engineering, Graduate School of Engineering, Nagoya University , Furo-cho, Chikusa-ku, Nagoya, 464-8603, Japan.

出版信息

J Phys Chem A. 2017 Nov 9;121(44):8495-8503. doi: 10.1021/acs.jpca.7b08112. Epub 2017 Oct 25.

Abstract

The theoretical aspects of the development of a chemical kinetic model for guaiacol and catechol pyrolysis are presented to describe the pyrolysis behaviors of the individual lignin-derived components. The possible pyrolysis pathways involving both unimolecular and bimolecular decomposition were investigated by the potential energy surfaces (PES) calculated at CBS-QB3 level. The high-pressure limiting rate constants of each elementary reaction step were evaluated based on the transition state theory (TST) to determine the dominant pyrolysis pathways. The kinetic analysis results predicted the most favorable catechol unimolecular decomposition pathways, where catechol isomerization to 2-hydroxycyclohexa-2,4-dien-1-one occurred via migration of the hydroxyl H atom, followed by decomposition into 1,3-cyclobutadiene, acetylene, and CO. In the case of the bimolecular reaction of catechol, a hydrogen radical is coupled to the carbon atom in the benzene ring, leading to the formation of phenol and a hydroxyl radical through dehydroxylation. On the other hand, guaiacol is likely to form catechol and phenol via the O-CH homolysis and coupling of a hydrogen radical to the carbon atom with the methoxyl group, respectively.

摘要

本文介绍了愈创木酚和儿茶酚热解化学动力学模型发展的理论方面,以描述单个木质素衍生成分的热解行为。通过在CBS-QB3水平计算的势能面(PES)研究了涉及单分子和双分子分解的可能热解途径。基于过渡态理论(TST)评估了每个基元反应步骤的高压极限速率常数,以确定主要的热解途径。动力学分析结果预测了最有利的儿茶酚单分子分解途径,即儿茶酚通过羟基H原子迁移异构化为2-羟基环己-2,4-二烯-1-酮,随后分解为1,3-环丁二烯、乙炔和CO。在儿茶酚的双分子反应中,一个氢自由基与苯环中的碳原子偶联,通过脱羟基作用生成苯酚和一个羟基自由基。另一方面,愈创木酚可能分别通过O-CH均裂和氢自由基与含甲氧基的碳原子偶联形成儿茶酚和苯酚。

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