Molecular insights into the composition, sources, and aging of atmospheric brown carbon

IF 40.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chemical Society Reviews Pub Date : 2025-01-02 DOI:10.1039/D3CS00609C
Alexander Laskin, Christopher P. West and Anusha P. S. Hettiyadura
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Abstract

The light-absorbing chemical components of atmospheric organic aerosols are commonly referred to as Brown Carbon (BrC), reflecting the characteristic yellowish to brown appearance of aerosol. BrC is a highly complex mixture of organic compounds with diverse compositions and variable optical properties of its individual chromophores. BrC significantly influences the radiative budget of the climate and contributes to adverse air pollution effects such as reduced visibility and the presence of inhalable pollutants and irritants. However, a fundamental understanding of the sources, formation, and transformation (aging effects) of BrC remains incomplete. This gap in knowledge necessitates advanced chemical characterization of individual aerosol components and the correlation of their composition with optical properties. Over the past decade, a multi-modal analytical platform composed of high-performance liquid chromatography with a photodiode array UV-vis detector and high-resolution mass spectrometry has been extensively used for the untargeted analysis of BrC components in complex mixtures of atmospheric organic aerosols and their laboratory proxies. This method separates solvent-extractable BrC compounds into distinct fractions, each characterized by specific retention times, UV-vis absorption spectra, and elemental compositions, offering comprehensive molecular insights into BrC components. In this review, we highlight the application of this platform in analyzing both real-world aerosol samples and laboratory-generated proxies. These studies have identified composition-specific sources and transformations of BrC, advancing our understanding of these complex atmospheric mixtures. Atmospheric humic-like substances (HULIS), formed through cloud processing of wildfire smoke and the oligomerization of water-soluble organics, are key contributors to BrC. Additional HULIS originate from fossil fuel combustion, biogenic, and marine emissions. Key BrC chromophores include nitroaromatics, imidazoles, N-heterocycles, polyaromatic hydrocarbons, quinones, and others. Aging processes, including photolysis and multiphase reactions, can significantly alter BrC optical properties by generating new chromophores or degrading existing ones. The fundamental knowledge gained from these investigations is essential for assessing BrC optical properties. Additionally, it provides practical composition metrics necessary to inform and improve future atmospheric models, enabling more accurate predictions of BrC behavior and its impact on climate and air quality.

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对大气棕色碳的组成、来源和老化的分子洞察
大气有机气溶胶的吸光化学成分通常被称为棕色碳(Brown Carbon, BrC),它反映了气溶胶呈黄至棕色的特征。BrC是一种高度复杂的有机化合物混合物,具有不同的组成和不同的光学性质的单个发色团。BrC显著影响气候的辐射收支,并造成不利的空气污染影响,如能见度降低和可吸入污染物和刺激物的存在。然而,对BrC的来源、形成和转化(老化效应)的基本认识仍然不完整。这种知识上的差距需要对单个气溶胶成分进行先进的化学表征,并将它们的组成与光学性质联系起来。在过去的十年中,由光电二极管阵列紫外可见检测器和高分辨率质谱组成的高效液相色谱多模态分析平台已被广泛用于大气有机气溶胶及其实验室代用物的复杂混合物中BrC成分的非靶向分析。该方法将可溶剂萃取的BrC化合物分离成不同的组分,每个组分都具有特定的保留时间,紫外-可见吸收光谱和元素组成,从而提供对BrC组分的全面分子见解。在这篇综述中,我们重点介绍了该平台在分析真实世界气溶胶样品和实验室生成的代理中的应用。这些研究已经确定了BrC的特定成分来源和转化,促进了我们对这些复杂大气混合物的理解。大气腐殖质样物质(HULIS)是由野火烟雾的云处理和水溶性有机物的寡聚形成的,是BrC的关键贡献者。额外的HULIS来自化石燃料燃烧、生物源和海洋排放。主要的BrC发色团包括硝基芳烃、咪唑、n -杂环、多芳烃、醌等。老化过程,包括光解和多相反应,可以通过产生新的发色团或降解现有的发色团来显著改变BrC的光学性质。从这些研究中获得的基本知识对于评估BrC光学性质至关重要。此外,它还提供了必要的实用成分指标,为未来的大气模式提供信息和改进,从而能够更准确地预测BrC的行为及其对气候和空气质量的影响。
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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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