Thermal and photoinduced chemistry of the aromatic Criegee intermediate, benzaldehyde oxide: Implications for indoor air quality.

IF 2.5 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Lily M Guidry, Kailyn A Zeringue, Tanima Barua, Michael F Vansco, Barbara Marchetti, Tolga N V Karsili
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引用次数: 0

Abstract

Essential oils contain a complex mixture of volatile organic compounds, ranging from terpenes to aromatics. When released into the indoor air environment or into the atmosphere, they may undergo oxidation to generate complex reactive intermediates that affect indoor air quality. Cinnamaldehyde is one such aromatic molecule that is abundant in essential oils. When released into the indoor air environment, it may undergo oxidation to form a carbonyl oxide (Criegee intermediate) with an aromatic substituent: benzaldehyde oxide. In this manuscript, we present a high-level quantum chemical study that shows that, unlike smaller atmospherically relevant Criegee intermediates, benzaldehyde oxide is expected to undergo solar photolysis on timescales that are competitive with its ground state unimolecular and bimolecular chemistry. We show that aromatic substitution leads to a drastic bathochromic shift in the spectroscopically relevant excited states, revealing that photolysis in the indoor or outdoor environment should not be neglected when modeling the climate and air quality implications of Criegee intermediates with extended conjugation. We predict a range of products that may be important for forming lower volatility compounds via tropospherically relevant photochemistry. To motivate future experimental validation of our results, we propose a viable synthetic procedure of the relevant precursor for generating and stabilizing benzaldehyde oxide.

芳香族Criegee中间体苯甲醛氧化物的热化学和光诱导化学:对室内空气质量的影响。
精油含有挥发性有机化合物的复杂混合物,从萜烯到芳烃。当被释放到室内空气环境或大气中时,它们可能被氧化生成复杂的反应中间体,影响室内空气质量。肉桂醛就是这样一种芳香分子,在精油中含量丰富。当释放到室内空气环境时,它可能被氧化形成羰基氧化物(克里基中间体),具有芳香取代基:苯甲醛氧化物。在这篇论文中,我们提出了一项高水平的量子化学研究,该研究表明,与较小的大气相关Criegee中间体不同,苯甲醛氧化物有望在与基态单分子和双分子化学竞争的时间尺度上进行太阳光解。我们发现芳香取代导致光谱相关激发态的剧烈色移,揭示了在室内或室外环境中的光解作用在模拟具有扩展共轭的Criegee中间体的气候和空气质量影响时不应忽视。我们通过对流层相关光化学预测了一系列可能对形成低挥发性化合物很重要的产物。为了激发未来实验验证我们的结果,我们提出了一种可行的合成方法,用于生成和稳定苯甲醛氧化物的相关前体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Photochemistry and Photobiology
Photochemistry and Photobiology 生物-生化与分子生物学
CiteScore
6.70
自引率
12.10%
发文量
171
审稿时长
2.7 months
期刊介绍: Photochemistry and Photobiology publishes original research articles and reviews on current topics in photoscience. Topics span from the primary interaction of light with molecules, cells, and tissue to the subsequent biological responses, representing disciplinary and interdisciplinary research in the fields of chemistry, physics, biology, and medicine. Photochemistry and Photobiology is the official journal of the American Society for Photobiology.
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