Oxalate-Promoted SO2 Uptake and Oxidation on Iron Minerals: Implications for Secondary Sulfate Aerosol Formation

Environ Sci Technol. 2023 Sep 12;57(36):13559-13568. doi: 10.1021/acs.est.3c03369. Epub 2023 Aug 30.

Abstract

Mineral dust serves as a significant source of sulfate aerosols by mediating heterogeneous sulfur dioxide (SO2) oxidation in the atmosphere. Given that a considerable proportion of small organic acids are deposited onto mineral dust via long-range transportation, understanding their impact on atmospheric SO2 transformation and sulfate formation is of great importance. This study investigates the effect of oxalate on heterogeneous SO2 uptake and oxidation phenomenon by in situ FTIR, theoretical calculation, and continuous stream experiments, exploiting hematite (Fe2O3) as an environmental indicator. The results highlight the critical role of naturally deposited oxalate in mononuclear monodentate coordinating surface Fe atoms of Fe2O3 that enhances the activation of O2 for oxidizing SO2 into sulfate. Meanwhile, oxalate increases the hygroscopicity of Fe2O3, facilitating H2O dissociation into reactive hydroxyl groups and further augmenting the SO2 uptake capacity of Fe2O3. More importantly, other conventional iron minerals, such as goethite and magnetite, as well as authentic iron-containing mineral dust, exhibit similar oxalate-promoted sulfate accumulation behaviors. Our findings suggest that oxalate-assisted SO2 oxidation on iron minerals is one of the important contributors to secondary sulfate aerosols, especially during the nighttime with high relative humidity.

Keywords: Hematite; Iron minerals; Oxalate; SO2 oxidation; Secondary aerosol.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Aerosols
  • Iron*
  • Minerals
  • Oxalates*
  • Oxidation-Reduction
  • Sulfates
  • Sulfur Oxides

Substances

  • Iron
  • Oxalates
  • Sulfates
  • Minerals
  • Sulfur Oxides
  • Aerosols