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地球大气中功能化活性有机中间体的化学:影响、挑战与进展

Chemistry of Functionalized Reactive Organic Intermediates in the Earth's Atmosphere: Impact, Challenges, and Progress.

作者信息

Barber Victoria P, Kroll Jesse H

机构信息

Departments of Civil and Environmental Engineering and Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

出版信息

J Phys Chem A. 2021 Dec 9;125(48):10264-10279. doi: 10.1021/acs.jpca.1c08221. Epub 2021 Nov 30.

Abstract

The gas-phase oxidation of organic compounds is an important chemical process in the Earth's atmosphere. It governs oxidant levels and controls the production of key secondary pollutants, and hence has major implications for air quality and climate. Organic oxidation is largely controlled by the chemistry of a few reactive intermediates, namely, alkyl (R) radicals, alkoxy (RO) radicals, peroxy (RO) radicals, and carbonyl oxides (RRCOO), which may undergo a number of unimolecular and bimolecular reactions. Our understanding of these intermediates, and the reaction pathways available to them, is based largely on studies of unfunctionalized intermediates, formed in the first steps of hydrocarbon oxidation. However, it has become increasingly clear that intermediates with functional groups, which are generally formed later in the oxidation process, can exhibit fundamentally different reactivity than unfunctionalized ones. In this Perspective, we explore the unique chemistry available to functionalized organic intermediates in the Earth's atmosphere. After a brief review of the canonical chemistry available to unfunctionalized intermediates, we discuss how the addition of functional groups can introduce new reactions, either by changing the energetics or kinetics of a given reaction or by opening up new chemical pathways. We then provide examples of atmospheric reaction classes that are available only to functionalized intermediates. Some of these, such as unimolecular H-shift reactions of RO radicals, have been elucidated only relatively recently, and can have important impacts on atmospheric chemistry (e.g., on radical cycling or organic aerosol formation); it seems likely that other, as-yet undiscovered reactions of (multi)functional intermediates may also exist. We discuss the challenges associated with the study of the chemistry of such intermediates and review novel experimental and theoretical approaches that have recently provided (or hold promise for providing) new insights into their atmospheric chemistry. The continued use and development of such techniques and the close collaboration between experimentalists and theoreticians are necessary for a complete, detailed understanding of the chemistry of functionalized intermediates and their impact on major atmospheric chemical processes.

摘要

有机化合物的气相氧化是地球大气中一个重要的化学过程。它控制着氧化剂水平并影响关键二次污染物的生成,因此对空气质量和气候有着重大影响。有机氧化过程在很大程度上由少数反应中间体的化学性质所控制,这些中间体包括烷基(R)自由基、烷氧基(RO)自由基、过氧(RO₂)自由基和羰基氧化物(RR'COO),它们可能会发生一系列单分子和双分子反应。我们对这些中间体及其可能的反应途径的理解,很大程度上基于对在烃类氧化第一步中形成的未官能化中间体的研究。然而,越来越明显的是,通常在氧化过程后期形成的官能化中间体,其反应活性可能与未官能化中间体有根本不同。在这篇综述中,我们探讨了地球大气中官能化有机中间体所具有的独特化学性质。在简要回顾了未官能化中间体的典型化学性质之后,我们讨论了官能团的引入如何通过改变特定反应的能量或动力学,或者通过开辟新的化学途径来引发新的反应。然后,我们给出了仅适用于官能化中间体的大气反应类型的例子。其中一些反应,比如RO₂自由基的单分子氢转移反应,直到最近才被阐明,并且可能对大气化学(例如自由基循环或有机气溶胶形成)产生重要影响;很可能还存在其他尚未被发现的(多)官能化中间体的反应。我们讨论了研究这类中间体化学性质所面临的挑战,并综述了一些新的实验和理论方法,这些方法最近已经(或有望)为它们的大气化学性质提供新的见解。要全面、详细地了解官能化中间体的化学性质及其对主要大气化学过程的影响,持续使用和发展这些技术以及实验人员和理论人员之间的密切合作是必不可少的。

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