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1.
J Environ Manage ; 193: 439-447, 2017 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-28242114

RESUMO

Antimicrobials are continuously detected in environmental waters and their removal is important to avoid health and microorganisms damage. In this work, the peroxidation assisted by ultraviolet radiation (UV/H2O2) was studied to verify if the process was able to degrade sulfaquinoxaline and ofloxacin antimicrobials and to remove the toxicity and the antimicrobial activity of the solution. This process was effective on degradation of the antimicrobials, despite the antimicrobial activity removal, the toxicity of the solution increased throughout the reaction time.


Assuntos
Fotólise , Raios Ultravioleta , Anti-Infecciosos , Peróxido de Hidrogênio , Oxirredução , Poluentes Químicos da Água/toxicidade
2.
J Environ Manage ; 195(Pt 2): 224-231, 2017 Jun 15.
Artigo em Inglês | MEDLINE | ID: mdl-27558831

RESUMO

Sulfaquinoxaline (SQX) is an antimicrobial of the sulfonamides class. Usually employed in veterinary medicine, this contaminant of emerging concern has been found in superficial and groundwater and its consequences for the environment and human health are not completely known. In this study, SQX (C0 = 500 µg L-1, 1 L) degradation by an ozonation process at pH 3, 7, and 11 was evaluated. Ozonation was effective in degrading SQX: efficiency exceeding 99% was obtained applying an ozone dose of 2.8 mg L-1 at pH 3. Assays were performed according to a 22 design of experiments (DOE) with star points and three central points for statistical validity. Minimum and maximum levels were set at 3 and 11 for pH, and 0 and 11.5 mg L-1 for applied ozone dose. There was no significant interaction between these variables, and the pH value played the most important role in terms of contaminant degradation. In relation to toxicity, samples ozonated at pH 3 did not inhibit the luminescence of the bacteria, even though different intermediates were formed and identified by mass spectra. At pH 7, inhibition of luminescence remained almost constant (at around 30%) according to ozonation time or ozone dose. However, the hydroxyl radical, the major oxidant at pH 11, was responsible for the formation of toxic intermediates.


Assuntos
Ozônio , Sulfaquinoxalina , Concentração de Íons de Hidrogênio , Radical Hidroxila , Oxirredução , Poluentes Químicos da Água
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