Phosphate enhanced Cu(II)/peracetic acid process for diclofenac removal: Performance and mechanism

Environ Res. 2023 Sep 1:232:116340. doi: 10.1016/j.envres.2023.116340. Epub 2023 Jun 7.

Abstract

Since limitedly existing researches suggested Cu(II) had deficiently catalytic ability to PAA, in this work, we tested the oxidation performance of Cu(II)/PAA system on diclofenac (DCF) degradation under neutral conditions. It was found that overwhelming DCF removal could be obtained in Cu(II)/PAA system at pH 7.4 using phosphate buffer solution (PBS) compared to poor loss of DCF without PBS, and the apparent rate constant of DCF removal in PBS/Cu(II)/PAA system was 0.0359 min-1, 6.53 times of that in Cu(II)/PAA system. Organic radicals (i.e., CH3C(O)O• and CH3C(O)OO•) were evidenced as the dominant contributors to DCF destruction in PBS/Cu(II)/PAA system. PBS motivated the reduction of Cu(II) to Cu(I) through chelation effect, and then the activation of PAA by Cu(I) was facilitated. Besides, due to the steric hindrance of Cu(II)-PBS complex (CuHPO4), PAA activation was mediated from non-radical-generating pathway to radical-generating pathway, leading to desirably effective DCF removal by radicals. The transformation of DCF mainly experienced hydroxylation, decarboxylation, formylation and dehydrogenation in PBS/Cu(II)/PAA system. This work proposes the potential of coupling of phosphate and Cu(II) in optimizing PAA activation for organic pollutants elimination.

Keywords: Advanced oxidation process; Complexation; Cu(II); Peracetic acid; Phosphate.

MeSH terms

  • Diclofenac
  • Hydrogen Peroxide
  • Oxidation-Reduction
  • Peracetic Acid*
  • Phosphates
  • Water Pollutants, Chemical* / analysis

Substances

  • Peracetic Acid
  • Diclofenac
  • Phosphates
  • Water Pollutants, Chemical
  • Hydrogen Peroxide