苯并噻唑在空气中被 OH 氧化的实验和理论研究以及 O2 的作用。

IF 4.3 3区 环境科学与生态学 Q1 CHEMISTRY, ANALYTICAL
Natalia V. Karimova, Weihong Wang, R. Benny Gerber and Barbara J. Finlayson-Pitts
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引用次数: 0

摘要

苯并噻唑(BTH)及其衍生物是一组新出现的污染物,由于广泛应用于许多不同的消费品中,它们在环境中分布广泛。在空气中,与羟自由基(OH)的反应预计是 BTH 在气相中的主要损失过程,但其动力学和机理尚不清楚。在这里,我们结合实验和理论来确定 OH 与该系列中最小的苯并噻唑在气相中反应的速率常数和产物。该机理首先涉及 OH 对 BTH 的攻击,生成几个 OHBTH 中间产物。随后,O2 与 OHBTH 发生反应,生成理论预测的几种稳定产物。以苯为参照物,在空气中 1 个大气压和 298 K 条件下进行的相对速率研究得出,BTH + OH 反应的速率常数为每分子每秒 2.1 ± 0.1 × 10-12 (1σ) cm3,换算成 1 × 106 OH cm-3 时,在空气中的寿命为 5.5 天。测得的四种羟基苯并噻唑产物反映了对苯环上不同碳原子的攻击(n-OHBTH,其中 n = 4、5、6、7),其相对产物产率完全符合反应前 OH⋯BTH 复合物形成能量的计算结果。OH 对噻唑环上 -CH 的侵蚀导致生成 2-OHBTH,占整个反应的一小部分,而且与对苯环的侵蚀相比,其机理更为复杂。根据溶解自由能 (ΔGsolv) 预测产物色谱保留时间的理论方法对大多数产物都取得了成功。这些研究说明了如何将实验和理论有力地结合起来,用于预测新出现污染物的大气氧化产物,并最终用于评估其对环境的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Experimental and theoretical investigation of benzothiazole oxidation by OH in air and the role of O2†

Experimental and theoretical investigation of benzothiazole oxidation by OH in air and the role of O2†

Benzothiazole (BTH) and its derivatives are amongst a group of emerging contaminants that are widely distributed in the environment due to their extensive use in many different consumer products. In air, reaction with the hydroxyl radical (OH) is expected to be a major loss process for BTH in the gas phase, but the kinetics and mechanisms are unknown. Here, we report a combination of experiments and theory to determine both the rate constant and products of the reaction of OH with the smallest member of the series, benzothiazole, in the gas phase. The mechanism first involves an attack by OH on BTH to produce several OHBTH intermediates. This is followed by O2 reactions with OHBTH, leading to several stable products successfully predicted by theory. Relative rate studies at 1 atm in air and 298 K using benzene as a reference gave a rate constant for the BTH + OH reaction of 2.1 ± 0.1 × 10−12 (1σ) cm3 per molecule per s, which translates to a lifetime in air of 5.5 days at 1 × 106 OH cm−3. Four hydroxybenzothiazole products reflecting attack on different carbon atoms of the benzene ring were measured (n-OHBTH, where n = 4, 5, 6, 7), with the relative product yields well predicted by the calculated formation energies of the pre-reaction OH⋯BTH complex. Attack of OH on the –CH of the thiazole ring leads to the formation of 2-OHBTH, representing a smaller fraction of the overall reaction, and is shown to proceed through a more complex mechanism than attack on the benzene ring. A theoretical approach to predicting chromatographic retention times of the products based on solvation free energies (ΔGsolv) was successful for most of the products. These studies illustrate how the powerful combination of experiment and theory can be used to predict products of atmospheric oxidation of emerging contaminants and ultimately used to assess their impacts on the environment.

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来源期刊
Environmental Science: Processes & Impacts
Environmental Science: Processes & Impacts CHEMISTRY, ANALYTICAL-ENVIRONMENTAL SCIENCES
CiteScore
9.50
自引率
3.60%
发文量
202
审稿时长
1 months
期刊介绍: Environmental Science: Processes & Impacts publishes high quality papers in all areas of the environmental chemical sciences, including chemistry of the air, water, soil and sediment. We welcome studies on the environmental fate and effects of anthropogenic and naturally occurring contaminants, both chemical and microbiological, as well as related natural element cycling processes.
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