Kumar Purushottam, Hurley James F, Kreisberg Nathan M, Stump Braden, Keady Patricia, Grieshop Andrew, Isaacman-VanWertz Gabriel
Department of Civil and Environmental Engineering, Virginia Tech, Blacksburg, Virginia 24061, United States.
Aerosol Dynamics Inc., 935 Grayson Street, Berkeley, California 94710, United States.
ACS EST Air. 2024 Apr 29;1(6):464-473. doi: 10.1021/acsestair.3c00059. eCollection 2024 Jun 14.
Traditional online measurements of the chemical composition of particulate matter have relied on expensive and complex research-grade instrumentation based on mass spectrometry and/or chromatography. However, routine monitoring requires lower-cost alternatives that can be operated autonomously, and such tools are lacking. Routine monitoring of particulate matter, especially organic aerosol, relies instead on offline techniques such as filter collection that require significant operator effort. To address this gap, we present here a new online instrument, the "ChemSpot", that provides information on organic aerosol mass loading, volatility, and degree of oxygenation, along with sulfur content. The instrument grows particles with water condensation, impacts them onto a passivated surface with low heat capacity, and uses stepped thermal desorption of analytes to a combination of flame ionization detector (FID) and flame photometric detector (FPD) and then to a CO detector downstream of the FID/FPD setup. By relying on detectors designed for gas chromatography, calibration is achieved almost entirely through the introduction of gases without the need for regular introduction of particle-phase calibrants. Particle collection efficiency of greater than 95% was achieved consistently, and the collection cell was shown to rapidly and precisely heat to ∼800 °C at a rate as fast as 10 °C per second. Measurements of total organic carbon, volatility distribution of organic aerosol, total sulfur, and oxygen-to-carbon ratio (O:C) collected during a continuous multi-week period are presented here to demonstrate the autonomous operation of "ChemSpot". Colocated measurements with a mass spectrometer, an aerosol chemical speciation monitor (ACSM), show good correlation and relatively low bias between the instruments (mean absolute percentage error of 21% and 27% for organic carbon and equivalent sulfate measurements, respectively).
传统的颗粒物化学成分在线测量依赖于基于质谱和/或色谱法的昂贵且复杂的研究级仪器。然而,常规监测需要低成本的替代方案,这些方案能够自主运行,但目前缺乏这样的工具。颗粒物,尤其是有机气溶胶的常规监测,反而依赖于离线技术,如滤膜采集,这需要操作人员付出大量精力。为了填补这一空白,我们在此展示一种新的在线仪器——“ChemSpot”,它能够提供有机气溶胶质量负荷、挥发性、氧化程度以及硫含量等信息。该仪器通过水凝结使颗粒生长,将它们撞击到具有低热容量的钝化表面上,并使用分析物的阶梯式热脱附,将其传输至火焰离子化检测器(FID)和火焰光度检测器(FPD)组合,然后再传输至FID/FPD装置下游的一氧化碳检测器。通过依赖为气相色谱设计的检测器,几乎完全通过引入气体来实现校准,而无需定期引入颗粒相校准物。颗粒收集效率始终高于95%,并且收集池能够以每秒10℃的速度快速精确地加热到约800℃。这里展示了在连续数周内收集的总有机碳、有机气溶胶挥发性分布、总硫以及氧碳比(O:C)的测量结果,以证明“ChemSpot”的自主运行。与质谱仪、气溶胶化学形态监测仪(ACSM)的同步测量结果表明,两种仪器之间具有良好的相关性且偏差相对较小(有机碳和等效硫酸盐测量的平均绝对百分比误差分别为21%和27%)。