Literature DB >> 31604190

Formation of metal-organic ligand complexes affects solubility of metals in airborne particles at an urban site in the Po valley.

Andrea Tapparo1, Valerio Di Marco1, Denis Badocco1, Sara D'Aronco1, Lidia Soldà1, Paolo Pastore1, Brendan M Mahon2, Markus Kalberer3, Chiara Giorio4.   

Abstract

Metals in atmospheric aerosols play potentially an important role in human health and ocean primary productivity. However, the lack of knowledge about solubility and speciation of metal ions in the particles or after solubilisation in aqueous media (sea or surface waters, cloud or rain droplets, biological fluids) limits our understanding of the underlying physico-chemical processes. In this work, a wide range of metals, their soluble fractions, and inorganic/organic compounds contained in urban particulate matter (PM) from Padua (Italy) were determined. Metal solubility tests have been performed by dissolving the PM in water and in solutions simulating rain droplet composition. The water-soluble fractions of the metal ions and of the organic compounds having ligand properties have been subjected to a multivariate statistical procedure, in order to elucidate associations among the aqueous concentrations of these PM components in simulated rain droplets. In parallel, a multi-dimensional speciation calculation has been performed to identify the stoichiometry and the amount of metal-ligand complexes theoretically expected in aqueous solutions. Both approaches showed that the solubility and the aqueous speciation of metal ions were differently affected by the presence of inorganic and organic ligands in the PM. The solubility of Al, Cr, and Fe was strongly correlated to the concentrations of oxalic acid, as their oxalate complexes represented the expected dominant species in aqueous solutions. Oxalates of Al represented ∼98% of soluble Al, while oxalates of Cu represented 34-75% of the soluble Cu, and oxalates of Fe represented 76% of soluble Fe. The oxidation state of Fe can strongly impact the speciation picture. If Fe is present as Fe(II) rather than Fe(III), the amount of Cr and Cu complexed with diacids can increase from 75% to 94%, and from 32% to 53%, respectively. For other metals, the solubility depended on the formation of soluble aquo-complexes, hence with a scarce effect of the organic ligands. An iron-oxalate complex was also directly detected in aerosol sample extracts.
Copyright © 2019 The Authors. Published by Elsevier Ltd.. All rights reserved.

Entities:  

Keywords:  Deliquescent aerosol; Iron; Metal-ligand complexes; Oxalate; Urban PM(2.5)

Year:  2019        PMID: 31604190     DOI: 10.1016/j.chemosphere.2019.125025

Source DB:  PubMed          Journal:  Chemosphere        ISSN: 0045-6535            Impact factor:   7.086


  3 in total

1.  Atmospheric conditions and composition that influence PM2.5 oxidative potential in Beijing, China.

Authors:  Steven J Campbell; Kate Wolfer; Battist Utinger; Joe Westwood; Zhi-Hui Zhang; Nicolas Bukowiecki; Sarah S Steimer; Tuan V Vu; Jingsha Xu; Nicholas Straw; Steven Thomson; Atallah Elzein; Yele Sun; Di Liu; Linjie Li; Pingqing Fu; Alastair C Lewis; Roy M Harrison; William J Bloss; Miranda Loh; Mark R Miller; Zongbo Shi; Markus Kalberer
Journal:  Atmos Chem Phys       Date:  2021-04-12       Impact factor: 6.133

2.  The influence of chemical composition, aerosol acidity, and metal dissolution on the oxidative potential of fine particulate matter and redox potential of the lung lining fluid.

Authors:  Pourya Shahpoury; Zheng Wei Zhang; Andrea Arangio; Valbona Celo; Ewa Dabek-Zlotorzynska; Tom Harner; Athanasios Nenes
Journal:  Environ Int       Date:  2021-01-14       Impact factor: 9.621

3.  Photolytic radical persistence due to anoxia in viscous aerosol particles.

Authors:  Peter A Alpert; Jing Dou; Pablo Corral Arroyo; Frederic Schneider; Jacinta Xto; Beiping Luo; Thomas Peter; Thomas Huthwelker; Camelia N Borca; Katja D Henzler; Thomas Schaefer; Hartmut Herrmann; Jörg Raabe; Benjamin Watts; Ulrich K Krieger; Markus Ammann
Journal:  Nat Commun       Date:  2021-03-19       Impact factor: 14.919

  3 in total

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