Literature DB >> 19216189

Analytical determination of the aerosol organic mass-to-organic carbon ratio.

Hazem S El-Zanan1, Barbara Zielinska, Lynn R Mazzoleni, D Alan Hansen.   

Abstract

Particulate matter (PM) with an aerodynamic diameter < or = 2.5 microm (PM2.5) was collected daily (mid-July 1998 to the end of December 1999) over a 24-hr sampling period in a mixed light industrial-residential area in Atlanta, GA, to provide a subset of data for the Aerosol Research and Inhalation Epidemiology Study (ARIES). This study included the measurement of organic carbon (OC), elemental carbon (EC), and individual organic compounds. OC and EC average mean concentrations were 4.50 +/- 0.33 and 2.08 +/- 0.19 microg/m3, respectively. The ratio of organic matter mass (OM) to OC in PM2.5 aerosols in Atlanta was measured using three different approaches: (1) solvent extract residue gravimetric masses to individual OC concentrations of sequential apolar to polar solvent extracts (dichloromethane, acetone, and water); (2) mass balance of the PM2.5 measured gravimetric mass minus the mass concentrations of the inorganic/elemental constituents to the total OC concentration; and (3) polar organic compound speciation with the concentration weighted ratio to the total OC concentration. We found very good agreement between approach 1 and 2. The average OM/OC ratio calculated from the extract residue mass was 2.14 +/- 0.17. The average OM/OC ratio determined by mass balance was 2.16 +/- 0.43 for the whole period. The concentration weighted ratio calculated from the concentrations of polar organic compounds ranged between 1.55 and 1.72, which was likely a lower limit for the ratio because of the limited number of the polar organic compounds that can be quantified using gas chromatographic methods. We found seasonal differences with an OM/OC range of 1.77 in December 1999 to 2.39 in July 1999. These results suggest that the previously accepted value of 1.4 for the OM/OC ratio was too low even for urban locations during the winter months. Molecular-level speciation of the PM2.5-associated organic compounds showed that the concentrations of the molecular markers for wood smoke represented approximately 12-15% of the total polar organic compound concentrations during the winter months.

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Year:  2009        PMID: 19216189     DOI: 10.3155/1047-3289.59.1.58

Source DB:  PubMed          Journal:  J Air Waste Manag Assoc        ISSN: 1096-2247            Impact factor:   2.235


  4 in total

1.  Secondary Organic Aerosols from Aromatic Hydrocarbons and their Contribution to Fine Particulate Matter in Atlanta, Georgia.

Authors:  Ibrahim M Al-Naiema; John H Offenberg; Carter J Madler; Michael Lewandowski; Josh Kettler; Ting Fang; Elizabeth A Stone
Journal:  Atmos Environ (1994)       Date:  2020-02-15       Impact factor: 4.798

2.  Characterizing elemental, equivalent black, and refractory black carbon aerosol particles: a review of techniques, their limitations and uncertainties.

Authors:  Daniel A Lack; Hans Moosmüller; Gavin R McMeeking; Rajan K Chakrabarty; Darrel Baumgardner
Journal:  Anal Bioanal Chem       Date:  2013-12-03       Impact factor: 4.142

3.  Spatial and temporal variations of PM2.5 mass closure and inorganic PM2.5 in the Southeastern U.S.

Authors:  Bin Cheng; Lingjuan Wang-Li; Nicholas Meskhidze; John Classen; Peter Bloomfield
Journal:  Environ Sci Pollut Res Int       Date:  2019-09-13       Impact factor: 4.223

4.  Assessing the impact of anthropogenic pollution on isoprene-derived secondary organic aerosol formation in PM2.5 collected from the Birmingham, Alabama, ground site during the 2013 Southern Oxidant and Aerosol Study.

Authors:  Weruka Rattanavaraha; Kevin Chu; Sri Hapsari Budisulistiorini; Matthieu Riva; Ying-Hsuan Lin; Eric S Edgerton; Karsten Baumann; Stephanie L Shaw; Hongyu Guo; Laura King; Rodney J Weber; Miranda E Neff; Elizabeth A Stone; John H Offenberg; Zhenfa Zhang; Avram Gold; Jason D Surratt
Journal:  Atmos Chem Phys       Date:  2017       Impact factor: 6.133

  4 in total

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