Literature DB >> 33204049

Coupling an online ion conductivity measurement with the particle-into-liquid sampler: Evaluation and modeling using laboratory and field aerosol data.

Ewan Crosbie1,2, Michael A Shook2, Luke D Ziemba2, Bruce E Anderson2, Rachel A Braun3, Matthew D Brown1,2, Carolyn E Jordan4,2, Alexander B MacDonald3, Richard H Moore1, John B Nowak2, Claire E Robinson1,2, Taylor Shingler2, Armin Sorooshian3,5, Connor Stahl3, K Lee Thornhill1,2, Elizabeth B Wiggins2,6, Edward Winstead1,2.   

Abstract

A particle-into-liquid sampler (PILS) was coupled to a flow-through conductivity cell to provide a continuous, nondestructive, online measurement in support of offline ion chromatography analysis. The conductivity measurement provides a rapid assessment of the total ion concentration augmenting slower batch-sample data from offline analysis and is developed primarily to assist airborne measurements, where fast time-response is essential. A conductivity model was developed for measured ions and excellent closure was derived for laboratory-generated aerosols (97% conductivity explained, R2 > 0.99). The PILS-conductivity measurement was extensively tested throughout the NASA Cloud, Aerosol and Monsoon Processes: Philippines Experiment (CAMP2Ex) during nineteen research flights. A diverse range of ambient aerosol was sampled from biomass burning, fresh and aged urban pollution, and marine sources. Ambient aerosol did not exhibit the same degree of closure as the laboratory aerosol, with measured ions only accountable for 43% of the conductivity. The remaining fraction of the conductivity was examined in combination with ion charge balance and found to provide additional supporting information for diagnosing and modeling particle acidity. An urban plume case study was used to demonstrate the utility of the measurement for supplementing compositional data and augmenting the temporal capability of the PILS.

Year:  2020        PMID: 33204049      PMCID: PMC7668158          DOI: 10.1080/02786826.2020.1795499

Source DB:  PubMed          Journal:  Aerosol Sci Technol        ISSN: 0278-6826            Impact factor:   2.908


  6 in total

1.  New technique for online measurement of water-soluble Fe(II) in atmospheric aerosols.

Authors:  Neeraj Rastogi; Michelle M Oakes; James J Schauer; Martin M Shafer; Brian J Majestic; Rodney J Weber
Journal:  Environ Sci Technol       Date:  2009-04-01       Impact factor: 9.028

2.  Synergistic O3 + OH oxidation pathway to extremely low-volatility dimers revealed in β-pinene secondary organic aerosol.

Authors:  Christopher M Kenseth; Yuanlong Huang; Ran Zhao; Nathan F Dalleska; J Caleb Hethcox; Brian M Stoltz; John H Seinfeld
Journal:  Proc Natl Acad Sci U S A       Date:  2018-08-03       Impact factor: 11.205

3.  Evidence for organosulfates in secondary organic aerosol.

Authors:  Jason D Surratt; Jesse H Kroll; Tadeusz E Kleindienst; Edward O Edney; Magda Claeys; Armin Sorooshian; Nga L Ng; John H Offenberg; Michael Lewandowski; Mohammed Jaoui; Richard C Flagan; John H Seinfeld
Journal:  Environ Sci Technol       Date:  2007-01-15       Impact factor: 9.028

4.  Surface and Airborne Measurements of Organosulfur and Methanesulfonate Over the Western United States and Coastal Areas.

Authors:  Armin Sorooshian; Ewan Crosbie; Lindsay C Maudlin; Jong-Sang Youn; Zhen Wang; Taylor Shingler; Amber M Ortega; Scott Hersey; Roy K Woods
Journal:  J Geophys Res Atmos       Date:  2015-08-27       Impact factor: 4.261

5.  Dimethylamine as a major alkyl amine species in particles and cloud water: Observations in semi-arid and coastal regions.

Authors:  J-S Youn; E Crosbie; L C Maudlin; Z Wang; A Sorooshian
Journal:  Atmos Environ (1994)       Date:  2015-12       Impact factor: 4.798

6.  Collection of soot particles into aqueous suspension using a particle-into-liquid sampler.

Authors:  Anna Wonaschuetz; Theresa Haller; Eva Sommer; Lorenz Witek; Hinrich Grothe; Regina Hitzenberger
Journal:  Aerosol Sci Technol       Date:  2018-12-06       Impact factor: 2.908

  6 in total

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