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Missing SO2 oxidant in the coastal atmosphere? - observations from high-resolution measurements of OH and atmospheric sulfur compounds

机译:沿海大气中缺少SO2氧化剂吗? -从高分辨率测量OH和大气含硫化合物中获得的观察结果

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摘要

Diurnal and seasonal variations of gaseous sulfuric acid (H2SO4) and methane sulfonic acid (MSA) were measured in NE Atlantic air at the Mace Head atmospheric research station during the years 2010 and 2011. The measurements utilized selected-ion chemical ionization mass spectrometry (SI/CIMS) with a detection limit for both compounds of 4.3 × 104 cm−3 at 5 min signal integration. The H2SO4 and MSA gas-phase concentrations were analyzed in conjunction with the condensational sink for both compounds derived from 3 nm to 10 μm (aerodynamic diameter) aerosol size distributions. Accommodation coefficients of 1.0 for H2SO4 and 0.12 for MSA were assumed, leading to estimated atmospheric lifetimes on the order of 7 and 25 min, respectively. With the SI/CIMS instrument in OH measurement mode alternating between OH signal and background (non-OH) signal, evidence was obtained for the presence of one or more unknown oxidants of SO2 in addition to OH. Depending on the nature of the oxidant(s), its ambient concentration may be enhanced in the CIMS inlet system by additional production. The apparent unknown SO2 oxidant was additionally confirmed by direct measurements of SO2 in conjunction with calculated H2SO4 concentrations. The calculated H2SO4 concentrations were consistently lower than the measured concentrations by a factor of 4.7 ± 2.4 when considering the oxidation of SO2 by OH as the only source of H2SO4. Both the OH and the background signal were also observed to increase significantly during daytime aerosol nucleation events, independent of the ozone photolysis frequency, J(O1D), and were followed by peaks in both H2SO4 and MSA concentrations. This suggests a strong relation between the unknown oxidant(s), OH chemistry, and the atmospheric photolysis and photooxidation of biogenic iodine compounds. As to the identity of the atmospheric SO2 oxidant(s), we have been able to exclude ClO, BrO, IO, and OIO as possible candidates based on {ab initio} calculations. Never-theless, IO could contribute significantly to the observed CIMS background signal. A detailed analysis of this CIMS background signal in context with recently published kinetic data currently suggests that Criegee intermediates (CIs) produced from ozonolysis of alkenes play no significant role for SO2 oxidation in the marine atmosphere at Mace Head. On the other hand, SO2 oxidation by small CIs such as CH2OO produced photolytically or possibly in the photochemical degradation of methane is consistent with our observations. In addition, H2SO4 formation from dimethyl sulfide oxidation via SO3 as an intermediate instead of SO2 also appears to be a viable explanation. Both pathways need to be further explored.
机译:在2010年至2011年期间,在梅斯黑德大气研究站的东北大西洋空气中测量了气态硫酸(H2SO4)和甲烷磺酸(MSA)的昼夜变化和季节性变化。这些测量采用了选择离子化学电离质谱(SI) / CIMS),两种化合物在5分钟信号积分下的检出限为4.3×104 cm-3。结合冷凝池对H2SO4和MSA气相浓度进行了分析,得出两种化合物的气溶胶粒径分布为3 nm至10μm(空气动力学直径)。假设H2SO4的住宿系数为1.0,MSA的住宿系数为0.12,导致估计的大气寿命分别为7分钟和25分钟。使用在OH测量模式下在OH信号和背景(非OH)信号之间交替的SI / CIMS仪器,获得了证据,证明除了OH之外,还存在一种或多种未知的SO2氧化剂。根据氧化剂的性质,可以通过额外生产在CIMS入口系统中提高其环境浓度。通过直接测量SO2以及计算出的H2SO4浓度,可以进一步确认明显的未知SO2氧化剂。当考虑将OH氧化为SO2的唯一来源时,计算出的H2SO4浓度始终比测量浓度低4.7±2.4倍。在白天气溶胶成核过程中,还观察到OH和背景信号均显着增加,而与臭氧光解频率J(O1D)无关,并且随后出现H2SO4和MSA浓度峰值。这表明未知的氧化剂,OH化学与大气中的光生化碘化合物的光解和光氧化之间存在密切的关系。关于大气中SO2氧化剂的身份,我们已经能够基于{ab initio}计算排除ClO,BrO,IO和OIO作为可能的候选物。但是,IO可能对观察到的CIMS背景信号有重大贡献。目前在最近发布的动力学数据中对该CIMS背景信号进行的详细分析表明,烯烃的臭氧分解产生的Criegee中间体(CIs)对Mace Head的海洋大气中的SO2氧化没有重要作用。另一方面,通过光分解或可能在甲烷的光化学降解中产生的CH2OO等小型CI氧化SO2与我们的观察结果一致。另外,通过二氧化硫通过二氧化硫作为中间体代替二氧化硫形成的二氧化硫也似乎是可行的解释。这两种途径都需要进一步探索。

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