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Measurement report: Long-emission-wavelength chromophores dominate the light absorption of brown carbon in aerosols over Bangkok: impact from biomass burning

机译:测量报告:长辐射波长发色团在曼谷上占据气溶胶中棕色碳的光吸收:影响生物量燃烧的影响

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Chromophores represent an important portion of light-absorbing species, i.e., brown carbon. Yet knowledge of what and how chromophores contribute to aerosol light absorption is still sparse. To address this problem, we examined soluble independent chromophores in a set of year-round aerosol samples from Bangkok. The water-soluble fluorescent chromophores identified via excitation–emission matrix (EEM) spectroscopy and follow-up parallel factor analysis could be mainly assigned as humic-like substances and protein-like substances, which differed in their EEM pattern from that of the methanol-soluble fraction. The emission wavelength of fluorescent chromophores in environmental samples tended to increase compared with that of the primary combustion emission, which could be attributed to secondary formation or the aging process. Fluorescent indices inferred that these light-absorbing chromophores were not significantly humified and comprised a mixture of organic matter of terrestrial and microbial origin, which exhibited a different characteristic from primary biomass burning and coal-combustion results. A multiple linear regression analysis revealed that larger fluorescent chromophores that were oxygen-rich and highly aromatic with high molecular weights were the key contributors of light absorption, preferably at longer emission wavelengths ( λ max ? ?500?nm). Positive matrix factorization analysis further suggested that up to 50?% of these responsible chromophores originated from biomass burning emissions.
机译:发色团代表光吸收物种的重要部分,即棕色碳。然而,了解发色团对气溶胶光吸收有贡献的内容以及如何稀疏。为了解决这个问题,我们在曼谷的一系列圆形气溶胶样品中检查了可溶性的独立发色团。通过激发 - 发射基质(EEM)光谱和后续平行因子分析鉴定的水溶性荧光发色团可以主要分配为腐殖质的物质和蛋白质物质,其在其EEM图案中与甲醇的不同之处可溶性分数。与初级燃烧发射相比,环境样品中荧光发色团的发光波长趋于增加,这可能归因于二次形成或老化过程。荧光指数推断出这些光学吸收发色团没有显着令人羞辱,并包含陆地和微生物来源的有机物的混合物,从原发性生物质燃烧和煤燃烧结果表现出不同的特征。多元线性回归分析表明,具有高分子量的富含氧的荧光发色团是光吸收的关键贡献者,优选在较长的发射波长(λmax&αmm)。阳性矩阵分解分析进一步表明,最多50?%这些负责发色团起源于生物量燃烧排放。

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