4.7 Article

EDTA enhances the photodegradation of p-arsanilic acid in the presence of iron at near-neutral pH

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 450, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2022.137984

Keywords

P-arsanili cacid; Fe(III)-EDTA complex; Photodegradation; center dot OH; Photoproducts

Funding

  1. National Natural Science Foundation of China [21707106, 42077350, 22061132001]
  2. Russian Science Foundation [RSF-NSFC No. 21-43-00004]
  3. China Postdoctoral Science Foundation [2016M602358]

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The widespread use of organic arsenic pesticides and veterinary drugs has drawn attention, as their photochemical transformation in surface water contributes to degradation and the formation of products. This study investigates the effect of co-existent components, such as EDTA, on the photochemical transformation, and finds that the Fe(III)-EDTA complex exhibits photoactivity under both UVA light and simulated sunlight. Appropriate amounts of EDTA enhance the photodegradation efficiency, while excessive amounts suppress the reaction rate.
The widespread used organic arsenic pesticides and veterinary drugs have drawn attention for decades. Its photochemical transformation in the surface water contributes to its degradation and the formation of products. The effect of co-existent components like anthropogenic reagents (e.g. ethylenediaminetetraacetatic acid, EDTA) on the photochemical transformation has still to be investigated in depth. Fe(III)-EDTA complex is a common and abundant complex in surface water. In this work, UVA light and simulated sunlight have been used as light sources to explore the effect of Fe(III)-EDTA on the photodegradation of p-arsanilic acid (ASA), used as an organic arsenic feed additive. Whereas ASA hardly absorbs UVA light and can only be directly photolyzed by simulated sunlight, the Fe(III)-EDTA complex is photoactive under either light source. At pH 6, the presence of Fe (III)-EDTA complex enhances the photodegradation efficiency of ASA from 0% to ca. 23% after 180 min reaction under UVA light irradiation, and from 30% to ca. 58% after 45 min reaction under simulated sunlight irradiation. Appropriate amount of EDTA enhances the photodegradation efficiency, whereas excessive EDTA suppresses the initial reaction rate. Mechanistic study has revealed contributions from direct photolysis and photochemical reactions of Fe(III)-EDTA and Fe(III)-OH complexes. Generated center dot OH has been confirmed as the important contribution. Photodegradation products include inorganic arsenic, organic arsenic, and other organic by-products, and the proportions of these products vary in different light-induced systems due to the diverse re-action pathways. The results of this work improve our understanding of the risks of residual ASA in the envi-ronment, allow prediction of its migration and transformation, and show how organic arsenic livestock and poultry feed additives might be removed.

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