Composition and oxidation state of sulfur in atmospheric particulate matter
Item
Title (Dublin Core)
Composition and oxidation state of sulfur in atmospheric particulate matter
Description (Dublin Core)
The chemical and physical speciation of atmospheric sulfur was investigated in ambient aerosol samples using a combination of sulfur near-edge x-ray fluorescence spectroscopy (S-NEXFS) and X-ray fluorescence (XRF) microscopy. These techniques were used to determine the composition and oxidation state of sulfur in common primary emission sources and ambient particulate matter collected from the greater Atlanta area. Ambient particulate matter samples contained two oxidation states: S<sup>0</sup> and S<sup>+VI</sup>. Ninety-five percent of the individual aerosol particles (> 1 µm) analyzed contain S<sup>0</sup>. Linear combination fitting revealed that S<sup>+VI</sup> in ambient aerosol was dominated by ammonium sulfate as well as metal sulfates. The finding of metal sulfates provides further evidence for acidic reactions that solubilize metals, such as iron, during atmospheric transport. Emission sources, including biomass burning, coal fly ash, gasoline, diesel, volcanic ash, and aerosolized Atlanta soil, and the commercially available bacterium <i>Bacillus subtilis</i>, contained only S<sup>+VI</sup>. A commercially available <i>Azotobacter vinelandii</i> sample contained approximately equal proportions of S<sup>0</sup> and S<sup>+VI</sup>. S<sup>0</sup> in individual aerosol particles most likely originates from primary emission sources, such as aerosolized bacteria or incomplete combustion.
Creator (Dublin Core)
Longo, Amelia F.
Vine, David J.
King, Laura E.
Oakes, Michelle
Weber, Rodney J.
Huey, Lewis Gregory
Russell, Armistead G.
Ingall, Ellery D.
Date (Dublin Core)
2018-10-01
Type (Dublin Core)
Text
Format (Dublin Core)
application/pdf
Identifier (Dublin Core)
10.5194/acp-16-13389-2016
https://acp.copernicus.org/articles/16/13389/2016/
Source (Dublin Core)
eISSN: 1680-7324
Language (Dublin Core)
eng



