4.7 Article

Hydroxylamine promoted hydroxyl radical production and organic contaminants degradation in oxygenation of pyrite

Journal

JOURNAL OF HAZARDOUS MATERIALS
Volume 429, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jhazmat.2022.128380

Keywords

Pyrite; Hydroxylamine; Oxygenation processes; Hydroxyl radical; Organic contaminants degradation

Funding

  1. National Key Research and Development Program of China [2017YFA0207001]
  2. National Natural Science Foundation of China [42022049, 42130707, 42107382]
  3. Youth Innovation Promotion Association, CAS [2014270]
  4. Natural Science Foundation of Jiangsu Province [BK20200323]

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This study found that using hydroxylamine can enhance the degradation of organic contaminants by pyrite. In the Fenton-like pathway, the presence of hydroxylamine promotes the generation of reactive oxygen species, thereby increasing the efficient degradation of different organic contaminants.
The heterogeneous Fenton-like process using pyrite (FeS2) is increasingly recognized as a promising advanced oxidation process for removal of organic contaminants. However, the slow regeneration of Fe(II) limits the generation of reactive oxygen species for environment implication. To overcome this drawback, hydroxylamine was applied to enhance the reactivity of FeS2 to degrade organic contaminants under oxic conditions. Results showed that hydroxylamine facilitated the regeneration of Fe(II) on FeS2 surface to promote reactive oxygen species generation, thereby efficiently degrading different organic contaminants. The underlying mechanism was further elucidated that the presence of hydroxylamine enhanced electron transfer from FeS2 to O-2 to produce superoxide radicals (O-2(center dot-)), hydrogen peroxide (H2O2) and hydroxyl radical (HO center dot) via Fenton-like pathways, which induced the rapid degradation of organic contaminants (e.g., sulfamethoxazole (SMX)). The reactivity of FeS2 for organic contaminant degradation changed negligibly after seven cycles in the presence of hydroxylamine. The effects of pH and inorganic anions on SMX degradation were also clarified in details. The finding of this study would provide a novel strategy to enhance the contaminants degradation by FeS2-based advanced oxidation technologies for environmental remediation.

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