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Single-Particle Analysis for Structure and Iron Chemistry of Atmospheric Particulate Matter

化学 微粒 粒子(生态学) 气溶胶 铁质 同步加速器 薄雾 赤铁矿 同步辐射 化学物理 环境化学 矿物学 光学 有机化学 物理 地质学 海洋学
作者
Jie Ding,Yong Guan,Yalin Cong,Liang Chen,Yufeng Li,Lijuan Zhang,Lili Zhang,Jian Wang,Ru Bai,Yuliang Zhao,Chunying Chen,Liming Wang
出处
期刊:Analytical Chemistry [American Chemical Society]
卷期号:92 (1): 975-982 被引量:34
标识
DOI:10.1021/acs.analchem.9b03913
摘要

As a representative transition metal, iron plays a key role in chemical activities of atmospheric particulate matter (PM), being involved in particle-related free radical generation and adverse health effects. However, limited understanding of the structure and properties of individual micrometer-sized particulates obscures investigating the contributions of iron toward chemical activities. Here, we describe multidimensional analytical strategies to characterize the mass, spatial distribution, and chemical forms of iron in single haze particles using synchrotron radiation techniques. We first used X-ray fluorescence imaging to quantify the masses of multiple metals and yielded distribution maps of transition metals, which revealed the types of elements that tend to occur together. Additionally, we employed nanocomputed tomography to assess the spatial distribution of iron and observed that iron exists as small aggregates and is concentrated primarily in subsurface regions. We also combined X-ray absorption near structures with scanning transmission X-ray microscopy to quantify the ferrous and ferric forms and mapped their distributions in individual particles, which probably attribute chemical activity of iron. In conclusion, we demonstrated the power of synchrotron radiation-based techniques to study heretofore inaccessible chemical information in single haze particles, which may provide important clues about iron chemistry as a source of Fenton reactions and health effects. The multifaceted analytical approaches exhibit high sensitivity (subfemtogram per particle or ∼0.2 fg/μm2) toward multiple elements and are promising to be used for studying other concepts such as the solubility of aerosol iron, the heterogeneous oxidation of organic matters and SO2, and the formation and the aging of haze particles.
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