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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Physicochemical properties of nitrate aerosols: Implications for the atmosphere
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Physicochemical properties of nitrate aerosols: Implications for the atmosphere

机译:硝酸盐气溶胶的理化性质:对大气的影响

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As aerosols, such as sea salt and mineral dust, are transported through the atmosphere they undergo heterogeneous reactions with nitrogen oxides to form nitrate salts. The nitrate salt can have quite different physicochemical properties than the original aerosol, resulting in an aerosol that will markedly differ in its climate impact, heterogeneous chemistry, and photoactivity. In this Feature Article, we will review some aspects of the importance of aqueous nitrate aerosols as well as describe a new multi-analysis aerosol reactor system (MAARS) that is used to measure the physicochemical properties of these atmospherically relevant aerosols. Here we show measurements of the hygroscopic properties, cloud condensation nuclei activity, and FTIR extinction of nitrate salt aerosol. In particular, we have measured the hygroscopic growth of 100 nm size-selected nitrate particles including NaNO3, Ca(NO3)(2), Mg(NO3)(2), and a 1:1 mixture of Ca(NO3)(2) and Mg(NO3)(2) as a function of relative humidity (RH) at 298 K. Using Kohler theory, we have quantified the water content of these particles with increasing RH. FTIR extinction measurements of the full size distribution of each of the nitrate aerosols are analyzed to yield information about the local solvation environment of the nitrate ions and the long-wavelength light scattering of the particles at different RH. Furthermore, we have measured and compared the cloud condensation nuclei (CCN) activity of CaCO3, a large component of mineral dust aerosol, and Ca(NO3)(2), a product of atmospherically aged CaCO3 through reaction with nitrogen oxides, at supersaturations from 0.1% to 0.9%. These quantitative physicochemical data are needed if we are to better understand the chemistry as well as the climate effects of atmospheric aerosols as they are entrained, transported, reacted, and aged in the atmosphere. Our studies here focus on aqueous nitrate salts, the products of the reaction of nitrogen oxides with sea salt and mineral dust aerosol.
机译:当诸如海盐和矿物粉尘等气溶胶通过大气传输时,它们会与氮氧化物进行异质反应,形成硝酸盐。硝酸盐的物理化学性质可能与原始气溶胶完全不同,因此导致的气溶胶在气候影响,异质化学和光活性方面将有显着差异。在本专题文章中,我们将回顾硝酸硝酸盐气溶胶重要性的某些方面,并描述一种新的多分析气溶胶反应器系统(MAARS),该系统用于测量这些与大气相关的气溶胶的理化特性。在这里,我们显示了硝酸盐气溶胶的吸湿性,云凝结核活性和FTIR消光的测量值。特别是,我们测量了100 nm大小选定的硝酸盐颗粒的吸湿性生长,这些颗粒包括NaNO3,Ca(NO3)(2),Mg(NO3)(2)和1:1 Ca(NO3)(2)混合物和Mg(NO3)(2)在298 K下的相对湿度(RH)的函数。使用科勒理论,我们已经定量了这些颗粒随RH的增加而含水量。分析每种硝酸盐气溶胶的全尺寸分布的FTIR消光测量,以得出有关硝酸盐离子的局部溶剂化环境以及在不同RH下粒子的长波长光散射的信息。此外,我们测量并比较了CaCO3(矿物粉尘气溶胶的主要成分)和Ca(NO3)(2)(在大气中老化的CaCO3通过与氮氧化物反应生成的产物)在过饱和时的云凝结核(CCN)活性。 0.1%至0.9%如果我们要更好地了解大气中的气溶胶在大气中被夹带,运输,反应和老化的过程,则需要这些定量的理化数据。我们在这里的研究集中于硝酸盐水溶液,这是氮氧化物与海盐和矿物粉尘气溶胶反应的产物。

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