Literature DB >> 30086530

Abatement of 2,4-D by H2O2 solar photolysis and solar photo-Fenton-like process with minute Fe(III) concentrations.

Anna Serra-Clusellas1, Laura De Angelis2, Chung-Ho Lin3, Phuc Vo3, Mohamed Bayati4, Lloyd Sumner5, Zhentian Lei5, Nathalia B Amaral6, Liliana M Bertini2, Jose Mazza2, Luis R Pizzio7, Jorge D Stripeikis2, Julián A Rengifo-Herrera7, María M Fidalgo de Cortalezzi8.   

Abstract

The Photo-Fenton-like (PF-like) process with minute Fe(III) concentrations and the Hydrogen Peroxide Photolysis (HPP), using Xe-lamp or solar light as sources of irradiation, were efficiently applied to eliminate the herbicide 2,4-D from water. PF-like experiments concerning ferric and H2O2 concentrations of 0.6 mg L-1 and 20 mg L-1 respectively, using Xenon lamps (Xe-lamps) as a source of irradiation and 2,4-D concentrations of 10 mg L-1 at pH 3.6, exhibited complete 2,4-D degradation and 77% dissolved organic carbon (DOC) removal after 30 min and 6 h of irradiation respectively whereas HPP (in absence of ferric ions) experiments showed a 2,4-D reduction and DOC removal of 90% and 7% respectively after 6 h of irradiation. At pH 7.0, HPP process achieved a 2,4-D abatement of approximately 75% and a DOC removal of 4% after 6 h. PF-like exhibited slightly improved 2,4-D and DOC removals (80% and 12% respectively) after the same irradiation time probably due to the low pH reduction (from 7.0 to 5.6). Several chlorinated-aromatic intermediates were identified by HPLC-MS. These by-products were efficiently removed by PF at pH 3.6, whereas at neutral PF-like and acid or neutral HPP, they were not efficiently degraded. With natural solar light irradiation, 10 and 1 mg L-1 of 2,4-D were abated using minor H2O2 concentrations (3, 6, 10 and 20 mg L-1) and iron at 0.6 mg L-1 in Milli-Q water. Similar results to Xe-lamp experiments were obtained, where solar UV-B + A light H2O2 photolysis (HPSP) and solar photo-Fenton-like (SPF-like) played an important role and even at low H2O2 and ferric concentrations of 3 and 0.6 mg L-1 respectively, 2,4-D was efficiently removed at pH 3.6. Simulated surface water at pH 3.6 containing 1 mg L-1 2,4-D, 20 mg L-1 H2O2 and 0.6 mg L-1 Fe(III) under natural sunlight irradiation efficiently removed the herbicide and its main metabolite 2,4-DCP after 30 min of treatment while at neutral pH, 40% of herbicide degradation was achieved. In the case of very low iron concentrations (0.05 mg L-1) at acid pH, 150 min of solar treatment was required to remove 2,4-D.
Copyright © 2018 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  2,4-D; Chlorinated degradation by-products; Hydrogen peroxide solar photolysis; Solar photo-fenton-like; Water treatment

Mesh:

Substances:

Year:  2018        PMID: 30086530     DOI: 10.1016/j.watres.2018.07.072

Source DB:  PubMed          Journal:  Water Res        ISSN: 0043-1354            Impact factor:   11.236


  4 in total

1.  Co-catalysis of trace dissolved Fe(iii) with biochar in hydrogen peroxide activation for enhanced oxidation of pollutants.

Authors:  Dongqing Feng; Jianxin Shou; Sen Guo; Mengna Ya; Jianfa Li; Huaping Dong; Yimin Li
Journal:  RSC Adv       Date:  2022-06-10       Impact factor: 4.036

2.  Photo-Fenton process at natural conditions of pH, iron, ions, and humic acids for degradation of diuron and amoxicillin.

Authors:  Jose L Buitrago; Janeth Sanabria; Héctor M Gútierrez-Zapata; Frankly J Urbano-Ceron; Alejandra García-Barco; Paula Osorio-Vargas; Julián A Rengifo-Herrera
Journal:  Environ Sci Pollut Res Int       Date:  2019-11-21       Impact factor: 4.223

3.  Occurrence and transformation of phenoxy acids in aquatic environment and photochemical methods of their removal: a review.

Authors:  Paweł Muszyński; Marzena S Brodowska; Tadeusz Paszko
Journal:  Environ Sci Pollut Res Int       Date:  2019-12-01       Impact factor: 4.223

4.  Unveiling the Dependence between Hydroxyl Radical Generation and Performance of Fenton Systems with Complexed Iron.

Authors:  Paula García-Negueroles; Sara García-Ballesteros; Ana M Amat; Enzo Laurenti; Antonio Arques; Lucas Santos-Juanes
Journal:  ACS Omega       Date:  2019-12-09
  4 in total

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