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Chemical evolution of organic aerosol in Los Angeles during the CalNex 2010 study

机译:Calnex 2010研究中洛杉矶有机气溶胶的化学演变

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During the CalNex study (15 May to 16 June 2010) a large suite of instruments was operated at the Los Angeles area ground supersite to characterize the sources and atmospheric processing of atmospheric pollution. The thermal-desorption proton-transfer-reaction mass-spectrometer (TD-PTR-MS) was deployed to an urban area for the first time and detected 691 organic ions in aerosol samples, the mean total concentration of which was estimated as 3.3 μg m?3. Based on comparison to total organic aerosol (OA) measurements, we estimate that approximately 50% of the OA mass at this site was directly measured by the TD-PTR-MS. Based on correlations with aerosol mass spectrometer (AMS) OA components, the ions were grouped to represent hydrocarbon-like OA (HOA), local OA (LOA), semi-volatile oxygenated OA (SV-OOA), and low volatility oxygenated OA (LV-OOA). Mass spectra and thermograms of the ion groups are mostly consistent with the assumed sources and/or photochemical origin of the OA components. The mass spectra of ions representing the primary components HOA and LOA included the highest m/z, consistent with their higher resistance to thermal decomposition, and they were volatilized at lower temperatures (~ 150 °C). Photochemical ageing weakens C-C bond strengths (also resulting in chemical fragmentation), and produces species of lower volatility (through the addition of functional groups). Accordingly the mass spectra of ions representing the oxidized OA components (SV-OOA, and LV-OOA) lack the highest masses and they are volatilized at higher temperatures (250–300 °C). Chemical parameters like mean carbon number (nC), mean carbon oxidation state (OSC), and the atomic ratios O / C and H / C of the ion groups are consistent with the expected sources and photochemical processing of the aerosol components. Our data suggest that chemical fragmentation gains importance over functionalization as photochemical age of OA increases. Surprisingly, the photochemical age of OA decreases during the daytime hours, demonstrating the importance of rapid production of new (photochemically young) SV-OOA during daytime. The PTR detects higher organic N concentrations than the AMS, the reasons for which are not well understood and cannot be explained by known artifacts related to PTR or the AMS. The median atomic N / C ratio (6.4%) of the ion group representing LV-OOA is a factor 2 higher than N / C of any other ion group. This suggests a multiphase chemical source involving ammonium ions is contributing to LV-OOA.
机译:在Calnex研究(5月15日至2010年6月16日)期间,在洛杉矶地区的地板上运营了大量仪器,以表征大气污染的来源和大气加工。第一次将热解吸质子转移反应质谱仪(TD-PTR-MS)部署到城市区域,并在气溶胶样品中检测到691个有机离子,其平均总浓度估计为3.3μgm ?3。基于与总有机气溶胶(OA)测量的比较,我们估计该网站上大约50%的OA质量直接通过TD-PTR-MS测量。基于与气溶胶质谱仪(AMS)OA组分的相关性,将离子分组以代表烃类OA(HOA),局部OA(LOA),半挥发性含氧OA(SV-OOA)和低挥发性氧化OA( lv-ooa)。离子基团的质谱和热图主要与OA组分的假定源和/或光化学来源一致。代表主要成分Hoa和LOA的离子的质谱包括最高的M / Z,与其更高的热分解抗性一致,它们在较低温度(〜150℃)下挥发。光化学衰老削弱了C-C粘合强度(也导致化学碎裂),并产生较低挥发性的物种(通过添加官能团)。因此,代表氧化的OA组分(SV-OOA和LV-OOA)的离子的质谱缺乏最高质量,它们在较高温度(250-300℃)下挥发。化学参数,如平均碳数(NC),平均碳氧化态(OSC),离子组的原子比率O / C和H / C是一致的气溶胶组分的预期来源和光化学处理。我们的数据表明,随着OA的光化年龄的增加,化学碎片在官能化方面取得了重要性。令人惊讶的是,OA的光化学时代在日间时间减少,展示了在白天期间快速生产新的(光化学年轻)SV-OOA的重要性。 PTR检测比AMS更高的有机N浓度,其原因尚不清楚,不能通过与PTR或AMS相关的已知伪像解释。代表LV-OOA的离子基团的中值原子N / C比(6.4%)是高于任何其他离子基团的因子2。这表明涉及铵离子的多相化学来源是有助于LV-OOA。

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