Feasibility of Soil Dust Source Apportionment by the Pyrolysis-Gas Chromatography/Mass Spectrometry Method
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J. Chow | J. Watson | J. Veranth | R. Labban
[1] Characterization of PM2.5 Dust Emissions from Training/Testing Range Operations , 2008 .
[2] Li Li-rong. Determination of 64 trace semivolatile organic compounds in soil by gas chromatography/mass spectrometry(GC/MS) , 2007 .
[3] B. Simoneit,et al. Sugars--dominant water-soluble organic compounds in soils and characterization as tracers in atmospheric particulate matter. , 2004, Environmental science & technology.
[4] J. Chow,et al. Size and Geographical Variation in PM1, PM2.5 and PM10: Source Profiles from Soils in the Western United States , 2004 .
[5] P. Haddad,et al. Ion Chromatography , 2004, Analytical and bioanalytical chemistry.
[6] M. Andreae,et al. Study of tropical organic aerosol by thermally assisted alkylation-gas chromatography mass spectrometry (vol 68, pg 351, 2003) , 2003 .
[7] Judith C. Chow,et al. Similarities and differences in PM10 chemical source profiles for geological dust from the San Joaquin Valley, California , 2003 .
[8] Tan Zhu,et al. Receptor modeling application framework for particle source apportionment. , 2002, Chemosphere.
[9] B. Simoneit,et al. Organic Tracers from Wild Fire Residues in Soils and Rain/River Wash-Out , 2002 .
[10] Judith C. Chow,et al. Review of PM2.5 and PM10 Apportionment for Fossil Fuel Combustion and Other Sources by the Chemical Mass Balance Receptor Model , 2002 .
[11] S. A. Sheya. Development of thermal desorption gas chromatography/mass spectrometry as a rapid method for ambient particulate characterization , 2002 .
[12] C. Saiz-Jlmenez. Analytical Pyrolysis of Humic Substances ; Pitfalls , Limitations , and Possible Solutions , 2002 .
[13] Y. Rudich,et al. Analysis of semivolatile organic compounds in atmospheric aerosols by direct sample introduction thermal desorption GC/MS. , 2001, Environmental science & technology.
[14] J. Marinissen,et al. Management induced organic matter differentiation in grassland and arable soil: a study using pyrolysis techniques , 2001 .
[15] Exploratory Studies of PM10 Receptor and Source Profiling by GC/MS and Principal Component Analysis of Temporally and Spatially Resolved Ambient Samples , 2001, Journal of the Air & Waste Management Association.
[16] S. Yi,et al. Dry Deposition Fluxes and Size Distributions of Heavy Metals in Seoul, Korea During Yellow-Sand Events , 2001 .
[17] Horsfield,et al. Quantification of polycyclic aromatic hydrocarbons in the NIST standard reference material (SRM1649A) urban dust using thermal desorption GC/MS , 2000, Analytical chemistry.
[18] M. Pelzing,et al. A new analytical approach for size-resolved speciation of organic compounds in atmospheric aerosol particles: Methods and first results , 2000 .
[19] Theodore V. Vorburger,et al. Project Report (1998-99) of NIST Standard Bullets and Casings (National Institute of Standards and Technology, Gaithersburg, MD) , 2000 .
[20] P. Leinweber,et al. Advances in analytical pyrolysis of soil organic matter , 1999 .
[21] Frank-Dieter Kopinke,et al. Pyrolysis pattern of anthropogenic and natural humic organic matter , 1998 .
[22] G. Cass,et al. Sources of Fine Organic Aerosol. 9. Pine, Oak, and Synthetic Log Combustion in Residential Fireplaces , 1998 .
[23] T. Gill,et al. Long‐range transport of North African dust to the eastern United States , 1997 .
[24] P. Leinweber,et al. Characterization of humic and soil particles by analytical pyrolysis and computer modeling , 1996 .
[25] James J. Schauer,et al. Source apportionment of airborne particulate matter using organic compounds as tracers , 1996 .
[26] J. Pacyna,et al. Chemical Mass Balance , 1995 .
[27] Judith C. Chow,et al. A laboratory resuspension chamber to measure fugitive dust size distributions and chemical compositions , 1994 .
[28] Consejo Superior de Investigaciones. Analytical Pyrolysis of Humic Substances; Pitfalls, Limitations, and Possible Solutions , 1994 .
[29] H. Schulten. Analytical pyrolysis of humic substances and soils: geochemical, agricultural and ecological consequences , 1993 .
[30] Judith C. Chow,et al. The dri thermal/optical reflectance carbon analysis system: description, evaluation and applications in U.S. Air quality studies , 1993 .
[31] B. Simoneit. Analysis of particulate organics in a forest atmosphere by thermodesorption GC/MS☆ , 1992 .
[32] Judith C. Chow,et al. Chapter 4 - Chemical Mass Balance , 1991 .
[33] H. Schulten,et al. Chemical characterization of the organic matter in forest soils by Curie point pyrolysis-GC/MS and pyrolysis-field ionization mass spectrometry , 1990 .
[34] G. Gordon,et al. Receptor models. , 1988, Environmental science & technology.
[35] G. W. Robertson,et al. Indications from analytical pyrolysis on the evolution of organic materials in the temperate environment , 1987 .
[36] J. Alcañiz,et al. A multifactorial analysis of soil pyrograms as a criterion for discrimination between humus types , 1987 .
[37] J. Damsté,et al. Screening of anthropogenic compounds in polluted sediments and soils by flash evaporation/pyrolysis gas chromatography-mass spectrometry , 1986 .
[38] C. Saiz-Jimenez,et al. Chemical characterization of soil organic matter fractions by analytical pyrolysis-gas chromatography-mass spectrometry , 1986 .
[39] John G. Watson,et al. The effective variance weighting for least squares calculations applied to the mass balance receptor model , 1984 .
[40] M. Gassiot-Matas,et al. Pyrolysis—gas chromatography—mass spectrometry of a low organic matter calcareous soil , 1982 .
[41] K. Voorhees,et al. Pyrolysis—mass spectrometry studies of atmospheric particles , 1981 .
[42] J H Seinfeld,et al. Optimal distribution of air pollution sources. , 1973, Atmospheric environment.
[43] Pete Smith,et al. Soil organic matter , 2013 .