Publication Cover
Journal of Environmental Science and Health, Part A
Toxic/Hazardous Substances and Environmental Engineering
Volume 53, 2018 - Issue 13
360
Views
27
CrossRef citations to date
0
Altmetric
Articles

Optimization of ciprofloxacin degradation in wastewater by homogeneous sono-Fenton process at high frequency

, , , , , & show all
Pages 1139-1148 | Received 21 Feb 2018, Accepted 30 Apr 2018, Published online: 09 Jan 2019

References

  • Rivera-Utrilla, J.; Sánchez-Polo, M.; Ferro-García, M. Á.; Prados-Joya, G.; Ocampo-Pérez, R. Pharmaceuticals as Emerging Contaminants and Their Removal from Water. A Review. Chemosphere 2013, 93, 1268–1287.
  • Padhye, L. P.; Yao, H.; Kung'u, F. T.; Huang, C. H. Year-Long Evaluation on the Occurrence and Fate of Pharmaceuticals, Personal Care Products, and Endocrine Disrupting Chemicals in an Urban Drinking Water Treatment Plant. Water Res. 2014, 51, 266–276.
  • Andreu, V.; Gimeno García, E.; Pascual, J. A.; Vazquez-Roig, P.; Picó, Y. Presence of Pharmaceuticals and Heavy Metals in the Waters of a Mediterranean Coastal Wetland: Potential Interactions and the Influence of the Environment. Sci. Total Environ. 2016, 540, 278–286.
  • Alves Monteiro, M.; Ferraz Spisso, B.; dos Santos, R. M. P. J.; da Pinto Costa, R.; Gomes Ferreira, R.; Ulberg Pereira, M.; da Silva Miranda, T.; de Rodrigues Geraldino de Andrade, B.; d’Avila, L. A. Occurrence of Antimicrobials in River Water Samples from Rural Region of the State of Rio De Janeiro, Brazil. J. Environ. Protect. 2016, 07, 230–241.
  • Lloret, L.; Eibes, G.; L.; Chau, T. A.; Moreira, M. T.; Feijoo, G.; Lema, J. M. Laccase-Catalyzed Degradation of anti-Inflammatories and Estrogens. Biochem. Eng. J. 2010, 51, 124–131.
  • Santos, L. H.; Araújo, A. N.; Fachini, A.; Pena, A.; Delerue Matos, C.; Montenegro, M. C. Ecotoxicological Aspects Related to the Presence of Pharmaceuticals in the Aquatic Environment. J. Hazard. Mater. 2010, 175, 45–95.
  • Ziylan, A.; Ince, N. H. The Occurrence and Fate of anti-Inflammatory and Analgesic Pharmaceuticals in Sewage and Fresh Water: treatability by Conventional and Non-Conventional Processes. J. Hazard. Mater. 2011, 187, 24–36.
  • Taylor, D.; Senac, T. Human Pharmaceutical Products in the Environment–the “Problem” in Perspective. Chemosphere 2014, 115, 95–99.
  • Pereira, A. M.; Silva, L. J. G.; Meisel, L. M.; Lino, C. M.; Pena, A. Environmental Impact of Pharmaceuticals from Portuguese Wastewaters: geographical and Seasonal Occurrence, Removal and Risk Assessment. Environ. Res. 2015, 136, 108–119.
  • Homem, V.; Santos, L. Degradation and Removal Methods of Antibiotics from Aqueous matrices-a review. J. Environ. Manag. 2011, 92, 2304–2347.
  • Xiao, R.; He, Z.; Diaz-Rivera, D.; Pee, G. Y.; Weavers, L. K. Sonochemical Degradation of Ciprofloxacin and Ibuprofen in the Presence of Matrix Organic Compounds. Ultrason. Sonochem. 2014, 21, 428–435.
  • Zuccato, E.; Castiglioni, S.; Fanelli, R.; Bagnati, R.; Reitano, G.; Calamari, D. Risks Related to the Discharge of Pharmaceuticals in the Environment: Further Research Is Needed. In Pharmaceuticals in the Environment; Kummerer, K., Ed.; Springer: New York, 2004, pp 431–437.
  • Quesada Peñate, I.; Jáuregui Haza, U. J.; Wilhelm, A. M.; Delmas, H. Contaminación de Las Aguas Con Productos Farmacéuticos. Estrategias Para Enfrentar la Problemática. CENIC Ciencias Biológicas 2009, 40, 173–179.
  • Kümmerer, K. Significance of Antibiotics in the Environment. J. Antimicrob. Chemother. 2003, 52, 5–7.
  • Graham, D. W.; Olivares Rieumont, S.; Knapp, C. W.; Lima, L.; Werner, D.; Bowen, E. Antibiotic Resistance Gene Abundances Associated with Waste Discharges to the Almendares River near Havana, Cuba. Environ. Sci. Technol. 2011, 45, 418–424.
  • Knapp, C. W.; Lima, L.; Olivares Rieumont, S.; Bowen, E.; Werner, D.; Graham, D. W. Seasonal Variations in Antibiotic Resistance Gene Transport in the Almendares River, Havana, Cuba. Front. Microbiol. 2012, 3, 396.
  • Martínez, J. L. Antibiotics and Antibiotic Resistance Genes in Natural Environments. Science 2008, 321, 365–367.
  • Larsson, D. J. Antibiotics in the Environment. Ups. J. Med. Sci. 2014, 119, 108–112.
  • Li, X.; Wang, W.; Dou, J.; Gao, J.; Chen, S.; Quan, X.; Zhao, H. Dynamic Adsorption of Ciprofloxacin on Carbon Nanofibers: Quantitative Measurement by in Situ Fluorescence. J. Water Process. Eng. 2016, 9, 14–20.
  • Xiong, J. Q.; Kurade, M. B.; Kim, J. R.; Roh, H.S.; Jeon, B. H. Ciprofloxacin Toxicity ans its Co-metabolic Removal by a Freshwater Microalga Chlamydomonas Mexicana. J. Hazar. Mat. 2016, 323, 212–219.
  • Hughes, S. R.; Kay, P.; Brown, L. E. Global Synthesis and Critical Evaluation of Pharmaceutical Data Sets Collected from River Systems. Environ. Sci. Technol. 2013, 47, 661–677.
  • Ingerslev, F.; Halling‐Sørensen, B. Biodegradability Properties of Sulfonamides in Activated Sludge. Environ. Toxicol. Chem. 2000, 19, 2467–2473.
  • Li, W.; Nanaboina, V.; Zhou, Q.; Korshin, G. V. Effects of Fenton Treatment on the Properties of Effluent Organic Matter and Their Relationships with the Degradation of Pharmaceuticals and Personal Care Products. Water Res. 2012, 46, 403–412.
  • Mason, T. Industrial Sonochemistry: potential and Practicality. Ultrasonics 1992, 30, 192–196.
  • Kotronarou, A.; Mills, G.; Hoffmann, M. R. Decomposition of Parathion in Aqueous Solution by Ultrasonic Irradiation. Environ. Sci. Technol. 1992, 26, 1460–1462.
  • Koda, S.; Kimura, T.; Kondo, T.; Mitome, H.; A Standard Method to Calibrate Sonochemical Efficiency of an Individual Reaction System. Ultrason. Sonochem 2003, 149–156.
  • Gogate, P. R.; Sutkar, V. S.; Pandit, A. B. Sonochemical Reactors: important Design and Scale up Considerations with a Special Emphasis on Heterogeneous Systems. Chem. Eng. J. 2011, 166, 1066–1082.
  • Suslick, K. S. Sonochemistry. Science 1990, 247, 1439–1446.
  • Mason, T.; Lorimer, J.; Bates, D. Quantifying Sonochemistry: Casting Some Light on a ‘Black Art. Ultrasonics 1992, 30, 40–42.
  • Quesada Peñate, I. Julcour Lebigue C.; Jáuregui Haza U. J.; Wilhelm, A. M.; Delmas, H. Sonolysis of Levodopa and Paracetamol in Aqueous Solutions. Ultrason. Sonochem. 2009, 16, 610–616.
  • Fick, J.; Söderström, H.; Lindberg, R. H.; Phan, C.; Tysklind, M.; Larsson, D. G. Contamination of Surface, Ground, and Drinking Water from Pharmaceutical Production. Environ. Toxicol. Chem. 2009, 28, 2522–2527.
  • Cruz González, G.; González Labrada, K.; Milián Rodríguez, Y.; Quesada Peñate, I.; Colín Luna, J. A.; Ramírez Muñoz, J.; Jáuregui Haza, U. J. Enhancement of Paracetamol Degradation by sono-Fenton Process. Int. J. Chem. Mat. Environ. Res. 2015, 2, 37–45.
  • De Bel, E.; Janssen, C.; De Smet, S.; Van Langenhove, H.; Dewulf, J. Sonolysis of Ciprofloxacin in Aqueous Solution: Influence of Operational Parameters. Ultrason. Sonochem. 2011, 18, 184–189.
  • Sutar, R. S.; Rathod, V. K. Ultrasound Assisted Laccase Catalyzed Degradation of Ciprofloxacin Hydrochloride. J. Ind. Eng. Chem. 2015, 31, 276–282.
  • De Bel, E.; Dewulf, J.; De Witte, B.; Van Langenhove, H.; Janssen, C. Influence of pH on the Sonolysis of Ciprofloxacin: biodegradability, Ecotoxicity and Antibiotic Activity of Its Degradation Products. Chemosphere 2009, 77, 291–295.
  • Lastre-Acosta, A. M.; Cruz González, G.; Nuevas Paz, L.; Jáuregui Haza, U. J.; Teixeira Silva Costa, A. C. Ultrasonic Degradation of Sulfadiazine in Aqueous Solutions. Environ. Sci. Pollut. Res. 2015, 22, 918–925.
  • Cleceri, L.; Greenberg, A.; Eaton, A. Standard Methods for the Examination of Water and Wastewater. American Public Health Association, American Water Works Association, and Water Environment Association, Washington, DC, 1998.
  • Petrier, C.; Jeunet, A.; Luche, J. L.; Reverdy, G. Unexpected Frequency Effects on the Rate of Oxidative Processes Induced by Ultrasound. J. Am. Chem. Soc. 1992, 114, 3148–3150.
  • Petrier, C.; David, B.; Laguian, S. Ultrasonic Degradation at 20 kHz and 500 kHz of Atrazine and Pentachlorophenol in Aqueous Solution: Preliminary Results. Chemosphere 1996, 32, 1709–1718.
  • Pétrier, C.; Francony, A. Ultrasonic Waste-Water Treatment: incidence of Ultrasonic Frequency on the Rate of Phenol and Carbon Tetrachloride Degradation. Ultrason. Sonochem 1997, 4, 295–300.
  • Weavers, L. K.; Malmstadt, N.; Hoffmann, M. R. Kinetics and Mechanism of Pentachlorophenol Degradation by Sonication, Ozonation, and Sonolytic Ozonation. Environ. Sci. Technol. 2000, 34, 1280–1285.
  • Golash, N.; Gogate, P. R. Degradation of Dichlorvos Containing Wastewaters Using Sonochemical Reactors. Ultrason. Sonochem. 2012, 19, 1051–1060.
  • Wu, T. Y.; Guo, N.; Teh, C. Y.; Hay, J. X. W. Advances in Ultrasound Technology for Environmental Remediation; Springer Science & Business Media, 2012, 95–104.
  • Guo, W.; Shi, Y.; Wang, H.; Yang, H.; Zhang, G. Intensification of Sonochemical Degradation of Antibiotics Levofloxacin Using Carbon Tetrachloride. Ultrason. Sonochem. 2010, 17, 680–684.
  • Takács Novák, K.; Józan, M.; Hermecz, I.; Szász, G. Lipophilicity of Antibacterial Fluoroquinolones. Int. J. Pharm. 1992, 79, 89–96.
  • Bagal, M. V.; Gogate, P. R. Wastewater Treatment Using Hybrid Treatment Schemes Based on Cavitation and Fenton Chemistry: A Review. Ultrason. Sonochem. 2014, 21, 1–14.
  • Ou, H.; Ye, J.; Ma, S.; Wei, C.; Gao, N.; He, J. Degradation of Ciprofloxacin by UV and UV/H2O2 via Multiple-Wavelength Ultraviolet Light-Emitting Diodes: Effectiveness, Intermediates and Antibacterial Activity. Chem. Eng. J. 2016, 289, 391–401.
  • Wei, H.; Ye, J.; Ma, S.; Wei, C.; Gao, N.; He, J. Intensification of Levofloxacin Sono-Degradation in a US/H2O2 System with Fe3O4 Magnetic Nanoparticles. Chin. Chem. Eng. J. 2015, 23, 296–302.
  • Gad-Allah, T. A.; Ali, M. E.; Badawy, M. I. Photocatalytic Oxidation of Ciprofloxacin under Simulated Sunlight. J. Hazard. Mater. 2011, 186, 751–755.
  • Hamdaoui, O.; Naffrechoux, E. Sonochemical and Photosonochemical Degradation of 4-Chlorophenol in Aqueous Media. Ultrason. Sonochem. 2008, 15, 981–987.
  • Velegraki, T.; Poulios, I.; Charalabaki, M.; Kalogerakis, N.; Samaras, P.; Mantzavinos, D. Photocatalytic and Sonolytic Oxidation of Acid Orange 7 in Aqueous Solution. Appl. Catal. B Environ. 2006, 62, 159–168.
  • Manousaki, E.; Psillakis, E.; Kalogerakis, N.; Mantzavinos, D. Degradation of Sodium Dodecylbenzene Sulfonate in Water by Ultrasonic Irradiation. Water Res. 2004, 38, 3751–3759.
  • Mohajerani, M.; Mehrvar, M.; Ein-Mozaffari, F. Recent Achievements in Combination of Ultrasonolysis and Other Advanced Oxidation Processes for Wastewater Treatment. Int. J. Chem. Reactor Eng. 2010, 8, 5367–5382.
  • Gogate, P. R. Treatment of Wastewater Streams Containing Phenolic Compounds Using Hybrid Techniques Based on Cavitation: A Review of the Current Status and the Way Forward. Ultrason. Sonochem. 2008, 15, 1–15.
  • Chakma, S.; Moholkar, V. S. Investigations in Synergism of Hybrid Advanced Oxidation Processes with Combinations of Sonolysis + Fenton Process + UV for Degradation of Bisphenol A. Ind. Eng. Chem. Res. 2014, 53, 6855–6865.
  • Rayaroth, M. P.; Aravind, U. K.; Aravindakumar, C. T. Degradation of Pharmaceuticals by Ultrasound-Based Advanced Oxidation Process. Environ. Chem. Lett. 2016, 14, 259–290.
  • Méndez Arriaga, F.; Torres Palma, R. A.; Pétrier, C.; Esplugas, S.; Gimenez, J.; Pulgarin, C. Ultrasonic Treatment of Water Contaminated with Ibuprofen. Water Res. 2008, 42, 4243–4248.
  • Neyens, E.; Baeyens, J. A Review of Classic Fenton's peroxidation as an advanced oxidation technique. J. Hazard. Mater. 2003, 98, 33–50.
  • Mehrdad, A.; Hashemzadeh, R. Ultrasonic Degradation of Rhodamine B in the Presence of Hydrogen Peroxide and Some Metal Oxide. Ultrason. Ultrason. Sonochem. 2010, 17, 168–172.
  • Bremner, D. H.; Molina, R.; Martínez, F.; Melero, J. A.; Segura, Y. Degradation of Phenolic Aqueous Solutions by High Frequency sono-Fenton Systems (US–Fe2O3/SBA-15–H2O2). Appl. Catal. B Environ. 2009, 90, 380–388.
  • Lim, M.; Son, Y.; Khim, J. The Effects of Hydrogen Peroxide on the Sonochemical Degradation of Phenol and Bisphenol A. Ultrason. Sonochem. 2014, 21, 1976–1981.
  • Ku, Y.; Tu, Y. H.; Ma, C. M. Effect of Hydrogen Peroxide on the Decomposition of Monochlorophenols by Sonolysis in Aqueous Solution. Water Res. 2005, 39, 1093–1098.
  • Neppolian, B.; Jung, H.; Choi, H.; Lee, J. H.; Kang, J. W. Sonolytic Degradation of Methyl Tert-Butyl Ether: The Role of Coupled Fenton Process and Persulphate Ion. Water Res. 2002, 36, 4699–4708.
  • Liang, J.; Komarov, S.; Hayashi, N.; Kasai, E. Improvement in Sonochemical Degradation of 4-Chlorophenol by Combined Use of Fenton-like Reagents. Ultrason. Sonochem. 2007, 14, 201–207.
  • Lin, J. G.; Ma, Y. S. Oxidation of 2-Chlorophenol in Water by Ultrasound/Fenton Method. J. Environ. Eng. 2000, 126, 130–137.
  • Weissler, A. Formation of Hydrogen Peroxide by Ultrasonic Waves: Free Radicals. J. Am. Chem. Soc. 1959, 81, 1077–1081.
  • Jiang, Y.; Petrier, C.; Waite, T. D. Kinetics and Mechanisms of Ultrasonic Degradation of Volatile Chlorinated Aromatics in Aqueous Solutions. Ultrason. Sonochem. 2002, 9, 317–323.
  • Bobu, M.; Yediler, A.; Siminiceanu, I.; Zhang, F.; Schulte Hostede, S. Comparison of Different Advanced Oxidation Processes for the Degradation of Two Fluoroquinolone Antibiotics in Aqueous Solutions. J. Environ. Sci. Health A 2013, 48, 251–262.
  • Snyder, S. A.; Westerhoff, P.; Yoon, Y.; Sedlak, D. L. Pharmaceuticals, Personal Care Products, and Endocrine Disruptors in Water: implications for the Water Industry. Environ. Eng. Sci. 2003, 20, 449–469.
  • Westerhoff, P.; Aiken, G.; Amy, G.; Debroux, J. Relationships between the Structure of Natural Organic Matter and Its Reactivity towards Molecular Ozone and Hydroxyl Radicals. Water Res 1999, 33, 2265–2276.
  • Huber, M. M.; Gobel, A.; Joss, A.; Hermann, N.; Loffler, D.; McArdell, C.;, S.; Ried, A.; Siegrist, H.; Ternes, T. A.; von Gunten, U. Oxidation of Pharmaceuticals during Ozonation of Municipal Wastewater Effluents: A Pilot Study. Environ. Sci. Technol. 2005, 39, 4290–4299.
  • Taylor, E.; Cook, B.; Tarr, M. Dissolved Organic Matter Inhibition of Sonochemical Degradation of Aqueous Polycyclic Aromatic Hydrocarbons. Ultrason. Sonochem. 1999, 6, 175–183.
  • Laughrey, Z.; Bear, E.; Jones, R.; Tarr, M. A. Aqueous Sonolytic Decomposition of Polycyclic Aromatic Hydrocarbons in the Presence of Additional Dissolved Species. Ultrason. Sonochem. 2001, 8, 353–357.
  • Lu, Y.; Weavers, L. K. Sonochemical Desorption and Destruction of 4-Chlorobiphenyl from Synthetic Sediments. Environ. Sci. Technol. 2002, 36, 232–237.
  • Goskonda, S.; Catallo, W. J.; Junk, T. Sonochemical Degradation of Aromatic Organic Pollutants. Waste Manage 2002, 22, 351–356.
  • Cheng, J.; Vecitis, C. D.; Park, H.; Mader, B. T.; Hoffmann, M. R. Sonochemical Degradation of Perfluorooctane Sulfonate (PFOS) and Perfluorooctanoate (PFOA) in Landfill Groundwater: environmental Matrix Effects. Environ. Sci. Technol. 2008, 42, 8057–8063.
  • Kang, J. W.; Hung, H. M.; Lin, A.; Hoffmann, M. R. Sonolytic Destruction of Methyl Tert-Butyl Ether by Ultrasonic Irradiation: The Role of O3, H2O2, Frequency, and Power Density. Environ. Sci. Technol. 1999, 33, 3199–3205.
  • Tokumura, M.; Sugawara, A.; Raknuzzaman, M.; Habibullah Al Mamun, M.; Masunaga, S. Comprehensive Study on Effects of Water Matrices on Removal of Pharmaceuticals by Three Different Kinds of Advanced Oxidation Processes. Chemosphere 2016, 159, 317–325.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.