利用气溶胶质谱和中红外光谱分析有机气溶胶中的碎片离子官能团关系

A. Yazdani, N. Dudani, S. Takahama, A. Bertrand, A. Prévôt, I. El Haddad, A. Dillner
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摘要

摘要气溶胶质谱法(AMS)和中红外光谱法(MIR)是表征OM化学成分的两种分析方法。虽然AMS提供了高时间分辨率的体测量,但在电子碰撞(EI)电离过程中广泛的碎片化使得OM组分的表征受到限制。另一方面,使用MIR对聚四氟乙烯过滤器收集的气溶胶进行分析,可以提供功能基团(FG)信息,减少了样品的改变,但导致相对较低的时间分辨率。在这项工作中,我们比较并结合了几个环境室实验中MIR和AMS的测量结果,以更好地了解AMS光谱和OM的老化化学演变。将木材和煤炭燃烧的新鲜排放物注入环境模拟室,并用羟基和硝酸盐自由基老化。高分辨率飞行时间(HR-TOF) AMS测量了细颗粒物的总体化学成分。在老化前和老化后的PTFE过滤器上采样细颗粒物进行离线MIR分析。在比较AMS和MIR的体积测量后,我们使用多元统计方法确定了不同气溶胶源和老化过程对AMS OM质量有影响的官能团。我们还确定了由生物质和化石燃料燃烧产生的复杂OM的每个官能团产生的关键质量片段。最后,我们开发了一个统计模型,可以使用AMS和MIR测量值来估计OM的高时间分辨率官能团组成。利用这种方法,AMS光谱可以用来插值MIR的官能团测量,使我们能够更好地了解老化过程中OM的演变。
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Fragment ion-functional group relationships in organic aerosols using aerosol mass spectrometry and mid-infrared spectroscopy
Abstract. Aerosol mass spectrometry (AMS) and mid-infrared spectroscopy (MIR) are two analytical methods for characterizing the chemical composition of OM. While AMS provides high-temporal-resolution bulk measurements, the extensive fragmentation during the electron impact (EI) ionization makes the characterization of OM components limited. The analysis of aerosols collected on PTFE filters using MIR, on the other hand, provides functional group (FG) information with reduced sample alteration but results in a relatively low temporal resolution. In this work, we compared and combined MIR and AMS measurements for several environmental chamber experiments to achieve a better understanding of the AMS spectra and the OM chemical evolution by aging. Fresh emissions of wood and coal burning were injected into an environmental simulation chamber and aged with hydroxyl and nitrate radicals. A high-resolution time-of-flight (HR-TOF) AMS measured the bulk chemical composition of fine PM. Fine aerosols were also sampled on PTFE filters before and after aging for the offline MIR analysis. After comparing AMS and MIR bulk measurements, we used multivariate statistics to identify the influential functional groups contributing to AMS OM mass for different aerosol sources and aging processes. We also identified the key mass fragments resulting from each functional group for the complex OM generated from biomass and fossil fuel combustion. Finally, we developed a statistical model that enables estimation of the high-time-resolution functional group composition of OM using collocated AMS and MIR measurements. Using this approach, AMS spectra can be used to interpolate the functional group measurements by MIR, allowing us to better understand the evolution of OM during the aging process.
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