Rapid aqueous-phase dark reaction of phenols with nitrosonium ions: Novel mechanism for atmospheric nitrosation and nitration at low pH

Baohua Cai, Yixiang Wang, Xin Yang, Yanchen Li, Jinghao Zhai, Yaling Zeng, Jianhuai Ye, Lei Zhu, Tzung-May Fu, Qi Zhang
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Abstract

Dark aqueous-phase reactions involving the nitrosation and nitration of aromatic organic compounds play a significant role in the production of light-absorbing organic carbon in the atmosphere. This process constitutes a crucial aspect of tropospheric chemistry and has attracted growing research interest, particularly in understanding the mechanisms governing nighttime reactions between phenols and nitrogen oxides. In this study, we present new findings concerning the rapid dark reactions between phenols containing electron-donating groups and inorganic nitrite in acidic aqueous solutions with pH levels below 3.5. This reaction generates a substantial amount of nitroso- and nitro-substituted phenolic compounds, known for their light-absorbing properties and toxicity. In experiments utilizing various substituted phenols, we demonstrate that their reaction rates with nitrite depend on the electron cloud density of the benzene ring, indicative of an electrophilic substitution reaction mechanism. Control experiments and theoretical calculations indicate that the nitrosonium ion (NO+) is the reactive nitrogen species responsible for undergoing electrophilic reactions with phenolate anions, leading to the formation of nitroso-substituted phenolic compounds. These compounds then undergo partial oxidation to form nitro-substituted phenols through reactions with nitrous acid (HONO) or other oxidants like oxygen. Our findings unveil a novel mechanism for swift atmospheric nitrosation and nitration reactions that occur within acidic cloud droplets or aerosol water, providing valuable insights into the rapid nocturnal formation of nitrogen-containing organic compounds with significant implications for climate dynamics and human health.
苯酚与亚硝基鏻离子的快速水相暗反应:低 pH 条件下大气亚硝酸化和硝化的新机制
涉及芳香族有机化合物亚硝基化和硝基化的暗水相反应在大气中产生光吸收有机碳方面发挥着重要作用。这一过程是对流层化学的一个重要方面,引起了越来越多的研究兴趣,尤其是在了解苯酚和氮氧化物之间的夜间反应机制方面。在这项研究中,我们就含有电子供体基团的苯酚与无机亚硝酸盐在 pH 值低于 3.5 的酸性水溶液中的快速暗反应发表了新的发现。这种反应会生成大量亚硝基和硝基取代的酚类化合物,这些化合物以其吸光特性和毒性而闻名。在利用各种取代酚进行的实验中,我们证明它们与亚硝酸盐的反应速率取决于苯环的电子云密度,这表明存在亲电取代反应机制。对照实验和理论计算表明,亚硝基锍离子(NO+)是负责与苯酚阴离子发生亲电反应的活性氮物种,从而形成亚硝基取代的酚类化合物。然后,这些化合物与亚硝酸(HONO)或其他氧化剂(如氧气)发生部分氧化反应,形成硝基取代酚。我们的研究结果揭示了酸性云滴或气溶胶水迅速发生大气亚硝酸化和硝化反应的新机制,为夜间含氮有机化合物的快速形成提供了宝贵的见解,对气候动力学和人类健康具有重要影响。
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