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Physical-chemical characterization of the textile dye Azo Ab52 degradation by corona plasma
Author(s) -
Aarón Gómez Díaz,
A. J. Torres-Arenas,
Josefina Vergara-Sánchez,
César Torres Segundo,
P. G. Reyes,
H. Martı́nez,
Hugo Saldarriaga-Noreña
Publication year - 2017
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4993181
Subject(s) - chemical oxygen demand , volume (thermodynamics) , chemistry , analytical chemistry (journal) , reactive dye , degradation (telecommunications) , corona discharge , evaporation , plasma , ferrous , chromatography , wastewater , electrode , dyeing , environmental engineering , organic chemistry , computer science , engineering , thermodynamics , telecommunications , physics , quantum mechanics
This work characterizes the degradation of the textile dye azo Acid Black 52 by measuring several physical and chemical parameters. A corona plasma was created at atmospheric pressure and applied on the liquid-air interface of water samples containing the dye. 1.0 mM of ferrous sulfate (FeSO4) was added to 1.0 mM dye solution, for a total volume of 250 mL. For each treatment, a number of parameters were quantified. These were voltage, current, temperature, loss of volume, pH, electrical conductivity, concentration, optical mission spectra, chemical oxygen demand (COD), total organic carbon (TOC), and the removal ratio. Because of the increase in the sample temperature, the volume lost by evaporation was explored. The results show that the efficiency of the dye degradation by plasma is a function of treatment time. Moreover, the reactive concentration of FeSO4 and the exposition time of the plasma were varied at a constant volume, leading to the determination of the concentrations and optimal times. Considering the degradation and removal parameters, at the maximum treated time of 80 min, it found that COD was of 96.36%, TOC of 93.93%, and the removal ratio of 97.47%

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