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首页> 外文期刊>Atmospheric chemistry and physics >Towards closing the gap between hygroscopic growth and CCN activation for secondary organic aerosols - Part 3: Influence of the chemical composition on the hygroscopic properties and volatile fractions of aerosols
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Towards closing the gap between hygroscopic growth and CCN activation for secondary organic aerosols - Part 3: Influence of the chemical composition on the hygroscopic properties and volatile fractions of aerosols

机译:试图缩小次生有机气溶胶的吸湿性增长和CCN活化之间的差距-第3部分:化学成分对气溶胶的吸湿性和挥发性组分的影响

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The influence of varying levels of water mixing ratio, r, during the formation of secondary organic aerosol (SOA) from the ozonolysis of alpha-pinene on the SOA hygroscopicity and volatility was investigated. The reaction proceeded and aerosols were generated in a mixing chamber and the hygroscopic characteristics of the SOA were determined with the Leipzig Aerosol Cloud Interaction Simulator (LACIS) and a Cloud Condensation Nuclei counter (CCNc). In parallel, a High-Resolution Time-of-Flight Aerodyne Aerosol Mass Spectrometer (HR-ToF-AMS) located downstream of a thermodenuder (TD) sampling from the mixing chamber, to collect mass spectra of particles from the volatile and less-volatile fractions of the SOA. Results showed that both hygroscopic growth and the volatile fraction of the SOA increased with increases in r inside the mixing chamber during SOA generation. An effective density of 1.40 g cm(-3) was observed for the generated SOA when the reaction proceeded with r > 1 g kg(-1). Changes in the concentrations of the fragment CO2+ and the sum of CxHyOz+ (short name CHO) and CxHy+ (short name CH) fragments as measured by the HR-ToF-AMS were used to estimate changes in the oxidation level of the SOA with reaction conditions, using the ratios CO2+ to CH and CHO to CH. Under humid conditions, both ratios increased, corresponding to the presence of more oxygenated functional groups (i.e., multifunctional carboxylic acids). This result is consistent with the alpha-pinene ozonolysis mechanisms which suggest that water interacts with the stabilized Criegee intermediate. The volatility and the hygroscopicity results show that SOA generation via ozonolysis of alpha-pinene in the presence of water vapour (r < 16.9 g kg(-1)) leads to the formation of more highly oxygenated compounds that are more hygroscopic and more volatile than compounds formed under dry conditions.
机译:研究了由α-ne烯的臭氧分解形成次要有机气溶胶(SOA)期间,不同水平的水混合比r对SOA的吸湿性和挥发性的影响。反应进行并在混合室内产生气溶胶,并使用莱比锡气溶胶云相互作用模拟器(LACIS)和云凝结核计数器(CCNc)确定SOA的吸湿特性。同时,位于混合室热脱胶器(TD)下游的高分辨率飞行时间Aerodyne气溶胶质谱仪(HR-ToF-AMS)收集了挥发性和挥发性较小的颗粒的质谱图SOA的一部分。结果表明,在SOA生成过程中,吸湿性增长和SOA的挥发性分数均随混合室内r的增加而增加。当反应以r> 1 g kg(-1)进行时,观察到生成的SOA的有效密度为1.40 g cm(-3)。使用HR-ToF-AMS测量的片段CO2 +浓度以及CxHyOz +(短名称CHO)和CxHy +(短名称CH)片段的浓度变化用于估计SOA氧化水平随反应条件的变化,使用CO2 +与CH的比率以及CHO与CH的比率。在潮湿条件下,两个比率均增加,这对应于存在更多的氧化官能团(即多官能羧酸)。该结果与α-pine烯的臭氧分解机理一致,后者表明水与稳定的Criegee中间体相互作用。挥发性和吸湿性结果表明,在水蒸气(r <16.9 g kg(-1))存在下,通过α-pine烯的臭氧分解生成SOA导致形成了比吸湿性和挥发性更大的更高氧合的化合物。在干燥条件下形成的化合物。

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