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Cloud condensation nuclei activity, droplet growth kinetics, and hygroscopicity of biogenic and anthropogenic secondary organic aerosol (SOA)

机译:云凝结核活性,液滴生长动力学,生物和人为二次有机气溶胶的吸湿性(SOA)

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Interaction of biogenic volatile organic compounds (VOCs) with Anthropogenic VOC (AVOC) affects the physicochemical properties of secondary organic aerosol (SOA). We investigated cloud droplet activation (CCN activity), droplet growth kinetics, and hygroscopicity of mixed anthropogenic and biogenic SOA (ABSOA) compared to pure biogenic SOA (BSOA) and pure anthropogenic SOA (ASOA). Selected monoterpenes and aromatics were used as representative precursors of BSOA and ASOA, respectively.We found that BSOA, ASOA, and ABSOA had similar CCN activity despite the higher oxygen to carbon ratio (O/C) of ASOA compared to BSOA and ABSOA. For individual reaction systems, CCN activity increased with the degree of oxidation. Yet, when considering all different types of SOA together, the hygroscopicity parameter, κCCN, did not correlate with O/C. Droplet growth kinetics of BSOA, ASOA, and ABSOA were comparable to that of (NH4)2SO4, which indicates that there was no delay in the water uptake for these SOA in supersaturated conditions.In contrast to CCN activity, the hygroscopicity parameter from a hygroscopic tandem differential mobility analyzer (HTDMA) measurement, κHTDMA, of ASOA was distinctively higher (0.090.10) than that of BSOA (0.030.06), which was attributed to the higher degree of oxidation of ASOA. The ASOA components in mixed ABSOA enhanced aerosol hygroscopicity. Changing the ASOA fraction by adding biogenic VOC (BVOC) to ASOA or vice versa (AVOC to BSOA) changed the hygroscopicity of aerosol, in line with the change in the degree of oxidation of aerosol. However, the hygroscopicity of ABSOA cannot be described by a simple linear combination of pure BSOA and ASOA systems. This indicates that additional processes, possibly oligomerization, affected the hygroscopicity.Closure analysis of CCN and HTDMA data showed κHTDMA was lower than κCCN by 3070?%. Better closure was achieved for ASOA compared to BSOA. This discrepancy can be attributed to several reasons. ASOA seemed to have higher solubility in subsaturated conditions and/or higher surface tension at the activation point than that of BSOA.
机译:与人为VOC(AVOC)生物挥发性有机化合物(VOC)的相互作用影响二次有机气溶胶(SOA)的物理化学性质。我们研究了云滴激活(CCN活性),液滴生长动力学,并与纯的生物SOA(BSOA)和纯人为SOA(ASOA)混合人为和生物SOA(ABSOA)的吸湿性。选择的单萜和芳烃用作BSOA和ASOA的代表性前体,respectively.We发现BSOA,ASOA和ABSOA具有相似的活性CCN尽管更高的氧与碳的比率相比BSOA和ABSOA ASOA的(O / C)。对于单个反应系统中,CCN活性随氧化程度增加。然而,考虑到所有不同类型的SOA在一起时,吸湿性参数,κCCN,没有与O / C相关。 BSOA,ASOA,和ABSOA的液滴生长动力学比得上(NH 4)2 SO 4,这表明有一个在水吸收这些SOA中的过饱和conditions.In对比CCN活性,从吸湿性吸湿性参数没有延迟的串联微分迁移率分析仪(HTDMA)测量,κHTDMA,ASOA的区别是比BSOA(0.030.06),其归因于较高程度ASOA的氧化的更高(0.090.10)。在混合ABSOA的ASOA部件增强气雾剂吸湿性。通过添加生物VOC(BVOC)至ASOA或反之亦然(AVOC到BSOA)改变ASOA分数改变气溶胶的吸湿性,符合在气溶胶的氧化程度的变化。然而,ABSOA的吸湿性不能由纯BSOA和ASOA系统的一个简单的线性组合来描述。这表明另外的过程,可能低聚,受影响CCN的hygroscopicity.Closure分析和HTDMA数据显示κHTDMA比κCCN下通过3070?%。更好闭合是为实现ASOA相比BSOA。这种差异可以归结为几个原因。 ASOA似乎在亚饱和条件和/或在比BSOA的激活点更高的表面张力更高的溶解度。
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