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气相中三氯生的OH引发反应的化学转化途径及动力学建模

Chemical conversion pathways and kinetic modeling for the OH-initiated reaction of triclosan in gas-phase.

作者信息

Zhang Xue, Zhang Chenxi, Sun Xiaomin, Kang Lingyan, Zhao Yan

机构信息

Environment Research Institute, Shandong University, Jinan 250100, China.

Department of Resource and Environment, Binzhou University, Binzhou 256600, China.

出版信息

Int J Mol Sci. 2015 Apr 10;16(4):8128-41. doi: 10.3390/ijms16048128.

Abstract

As a widely used antimicrobial additive in daily consumption, attention has been paid to the degradation and conversion of triclosan for a long time. The quantum chemistry calculation and the canonical variational transition state theory are employed to investigate the mechanism and kinetic property. Besides addition and abstraction, oxidation pathways and further conversion pathways are also considered. The OH radicals could degrade triclosan to phenols, aldehydes, and other easily degradable substances. The conversion mechanisms of triclosan to the polychlorinated dibenzopdioxin and furan (PCDD/Fs) and polychlorinated biphenyls (PCBs) are clearly illustrated and the toxicity would be strengthened in such pathways. Single radical and diradical pathways are compared to study the conversion mechanism of dichlorodibenzo dioxin (DCDD). Furthermore, thermochemistry is discussed in detail. Kinetic property is calculated and the consequent ratio of k add/k total and k abs/k total at 298.15 K are 0.955 and 0.045, respectively. Thus, the OH radical addition reactions are predominant, the substitute position of OH radical on triclosan is very important to generate PCDD and furan, and biradical is also a vital intermediate to produce dioxin.

摘要

作为日常消费中广泛使用的抗菌添加剂,三氯生的降解和转化长期以来一直受到关注。采用量子化学计算和正则变分过渡态理论来研究其机理和动力学性质。除了加成和夺氢反应外,还考虑了氧化途径和进一步的转化途径。羟基自由基可将三氯生降解为酚类、醛类和其他易降解物质。清晰阐明了三氯生向多氯代二苯并二恶英和呋喃(PCDD/Fs)以及多氯联苯(PCBs)的转化机制,且在此类途径中毒性会增强。比较了单自由基和双自由基途径以研究二氯二苯并二恶英(DCDD)的转化机制。此外,还详细讨论了热化学。计算了动力学性质,在298.15 K时k add/k total和k abs/k total的相应比值分别为0.955和0.045。因此,羟基自由基加成反应占主导,三氯生上羟基自由基的取代位置对生成PCDD和呋喃非常重要,双自由基也是生成二恶英的关键中间体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26bd/4425071/e9b99d903414/ijms-16-08128-g001a.jpg

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