鉴定室内空气中的挥发性有机化合物:使用原位气相色谱解释实时PTR-MS信号。

IF 4.3 3区 环境科学与生态学 Q1 CHEMISTRY, ANALYTICAL
Jenna C Ditto, Han N Huynh, Jie Yu, Michael F Link, Dustin Poppendieck, Megan S Claflin, Marina E Vance, Delphine K Farmer, Arthur W H Chan, Jonathan P D Abbatt
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引用次数: 0

摘要

质子转移反应质谱(PTR-MS)通常用于表征室内和室外环境下的气相化合物。PTR-MS测量通常不需要上游色谱分离,因此很难区分目标离子、其异构体和来自其他物种的碎片产物,这些离子都是在相同的质量电荷比下检测到的。这些同分异构体的贡献和碎片化干扰会影响精确化合物混合比的确定、精确化学性质的分配以及相应的化学命运分析。在这项研究中,我们在PTR-MS的上游部署了气相色谱仪来研究同分异构体和破碎产物对选定的室内空气相关化学物质的贡献。在表面和空气化学评估(CASA)研究期间,在一个测试室内进行了各种室内化学源、氧化剂和环境条件的测量。在每个提取的离子色谱中,观察到的混杂信号范围从0% (C2H6OH+, C8H24O4Si4H+和C10H30O5Si5H+)到98% (C5H9+)。对于许多离子,干扰信号因室内条件而异,并且室内和室外测量的干扰信号之间也存在差异。尽管室内条件不断变化,但关键结构异构体(如C6-C8羰基、二甲苯、三甲基苯和单萜)的相对贡献在整个测量期间保持一致。这些相对稳定的异构体分布为这些异构体组提供了稳定的化学性质分配。综上所述,这些观察结果可以为未来在没有上游色谱法的不同室内条件下测量的PTR-MS信号的解释提供信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Speciating volatile organic compounds in indoor air: using in situ GC to interpret real-time PTR-MS signals.

Proton transfer reaction mass spectrometry (PTR-MS) is often employed to characterize gas-phase compounds in both indoor and outdoor environments. PTR-MS measurements are usually made without upstream chromatographic separation, so it can be challenging to differentiate between an ion of interest, its isomers, and fragmentation products from other species all detected at the same mass-to-charge ratio. These isomeric contributions and fragmentation interferences can confound the determination of accurate compound mixing ratios, the assignment of accurate chemical properties, and corresponding analyses of chemical fate. In this study, we deployed a gas chromatograph upstream of a PTR-MS to investigate contributions of isomers and fragmentation products for select indoor air-relevant chemicals. Measurements were made in a test house across a variety of indoor chemical sources, oxidants, and environmental conditions during the Chemical Assessment of Surfaces and Air (CASA) study. Observed confounding signals at each extracted ion chromatogram ranged from 0% (C2H6OH+, C8H24O4Si4H+, and C10H30O5Si5H+) to 98% (at C5H9+). For many ions, confounding signals varied between indoor conditions, and there were also differences between confounding signals across indoor vs. outdoor measurements. The relative contribution of sets of key structural isomers (e.g., C6-C8 carbonyls, xylenes, trimethylbenzenes, and monoterpenes) remained consistent throughout the measurement period despite changing indoor conditions. These relatively stable isomer distributions yielded stable chemical property assignments for these isomer sets. Taken together, these observations can inform future interpretations of PTR-MS signals measured in different indoor conditions without upstream chromatography.

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来源期刊
Environmental Science: Processes & Impacts
Environmental Science: Processes & Impacts CHEMISTRY, ANALYTICAL-ENVIRONMENTAL SCIENCES
CiteScore
9.50
自引率
3.60%
发文量
202
审稿时长
1 months
期刊介绍: Environmental Science: Processes & Impacts publishes high quality papers in all areas of the environmental chemical sciences, including chemistry of the air, water, soil and sediment. We welcome studies on the environmental fate and effects of anthropogenic and naturally occurring contaminants, both chemical and microbiological, as well as related natural element cycling processes.
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