Emerging micropollutants have been recently the target of interest for their potential harmful effects in the environment and their resistance to conventional water treatments. Catalytic ozonation is an advanced oxidation process consisting of the formation of highly reactive radicals from the decomposition of ozone promoted by a catalyst. Nanocarbon materials have been shown to be effective catalysts for this process, either in powder form or grown on the surface of a monolithic structure. In this work, carbon nanofibers grown on the surface of a cordierite honeycomb monolith are tested as catalyst for the ozonation of five selected micropollutants: atrazine (ATZ), bezafibrate, erythromycin, metolachlor, and nonylphenol. The process is tested both in laboratorial and real conditions. Later on, ATZ was selected as a target pollutant to further investigate the role of the catalytic material. It is shown that the inclusion of a catalyst improves the mineralization degree compared to single ozonation.
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Research Article|
September 01 2013
Process design for wastewater treatment: catalytic ozonation of organic pollutants
S. Derrouiche;
1Veolia Environnement Recherche et Innovation, Centre de Recherche de Maisons Laffitte, Chemin de la digue – B.P. 76, 78603 Maisons Laffitte Cedex, France
E-mail: salim.derrouiche@veolia.com
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D. Bourdin;
D. Bourdin
1Veolia Environnement Recherche et Innovation, Centre de Recherche de Maisons Laffitte, Chemin de la digue – B.P. 76, 78603 Maisons Laffitte Cedex, France
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P. Roche;
P. Roche
1Veolia Environnement Recherche et Innovation, Centre de Recherche de Maisons Laffitte, Chemin de la digue – B.P. 76, 78603 Maisons Laffitte Cedex, France
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B. Houssais;
B. Houssais
1Veolia Environnement Recherche et Innovation, Centre de Recherche de Maisons Laffitte, Chemin de la digue – B.P. 76, 78603 Maisons Laffitte Cedex, France
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C. Machinal;
C. Machinal
1Veolia Environnement Recherche et Innovation, Centre de Recherche de Maisons Laffitte, Chemin de la digue – B.P. 76, 78603 Maisons Laffitte Cedex, France
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M. Coste;
M. Coste
1Veolia Environnement Recherche et Innovation, Centre de Recherche de Maisons Laffitte, Chemin de la digue – B.P. 76, 78603 Maisons Laffitte Cedex, France
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J. Restivo;
J. Restivo
2Laboratório de Catálise e Materiais (LCM), Laboratório Associado LSRE/LCM, Departamento de Engenharia Química, Universidade do Porto, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal
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J. J. M. Órfão;
J. J. M. Órfão
2Laboratório de Catálise e Materiais (LCM), Laboratório Associado LSRE/LCM, Departamento de Engenharia Química, Universidade do Porto, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal
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M. F. R. Pereira;
M. F. R. Pereira
2Laboratório de Catálise e Materiais (LCM), Laboratório Associado LSRE/LCM, Departamento de Engenharia Química, Universidade do Porto, Rua Dr. Roberto Frias, 4200-465 Porto, Portugal
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Y. Marco;
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Y. Marco
3Instituto de Carboquimica, ICB-CSIC, Miguel Luesma Castan 4, Zaragoza, 50018, Spain
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E. Garcia-Bordeje
E. Garcia-Bordeje
3Instituto de Carboquimica, ICB-CSIC, Miguel Luesma Castan 4, Zaragoza, 50018, Spain
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Water Sci Technol (2013) 68 (6): 1377–1383.
Article history
Received:
March 21 2013
Accepted:
May 17 2013
Citation
S. Derrouiche, D. Bourdin, P. Roche, B. Houssais, C. Machinal, M. Coste, J. Restivo, J. J. M. Órfão, M. F. R. Pereira, Y. Marco, E. Garcia-Bordeje; Process design for wastewater treatment: catalytic ozonation of organic pollutants. Water Sci Technol 1 September 2013; 68 (6): 1377–1383. doi: https://doi.org/10.2166/wst.2013.384
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