Study of the Degradation Kinetics and Photocatalytic Mineralization of the Dye 2-(4-Amino-2-Nitrophenyl)-1,3-Benzothiazole: Effect of TiO2 Dosage, pH, and Aeration on COD

The objective of this study was to evaluate the solar photocatalytic degradation of the disperse textile dye 2-(4-amino-2-nitrophenyl)-1,3-benzothiazole using titanium dioxide nanoparticles (TiO2 P25) under a mean solar irradiance of 492 ± 58 W/m2, evaluating the effects of pH, photocatalyst concentration, and continuous aeration on process efficiency. The degradation of the dye was determined by monitoring its concentration by UV–Visible spectrophotometry, while the mineralization was evaluated by chemical oxygen demand (COD). Likewise, kinetic behavior was analyzed using pseudo-first-order and pseudo-second-order models. The results showed that the degradation efficiency increased with the concentration of TiO2, reaching the highest yield with 400 ppm of TiO2 and continuous aeration, which confirms that both variables are determining operating factors for maximizing photocatalytic efficiency. pH exerted a significant influence on the activity of the system, obtaining the highest degradation efficiencies and the greatest reductions in COD under slightly alkaline conditions (pH 8–9), a behavior attributed to the greater colloidal stability of TiO2 and the modification of its surface properties with respect to its point of zero charge (pHpzc ≈ 6.2). The pseudo-second-order model generally provided an adequate empirical description of the experimental data; however, the best-fitting model varied depending on the experimental condition. The simultaneous decrease in the concentration of the dye and the COD confirmed that the treatment produced not only the decolorization of the solution, but also the progressive oxidation of the organic matter. Integrating kinetic analysis with the simultaneous assessment of decolorization and COD enabled clear experimental differentiation between adsorption and photocatalysis, strengthening the interpretation of TiO2-based solar photocatalytic systems. In conclusion, solar photocatalysis using TiO2 and the optimization of operational variables constitute an effective treatment strategy that takes advantage of solar irradiation as the primary energy source, thereby reducing dependence on conventional artificial UV irradiation. Within the scope of this study, the combination of solar radiation, continuous aeration and appropriate operating conditions demonstrated promising potential for the treatment of textile wastewater containing persistent dyes.

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Journal
Reactions
Published
2026-09-14
DOI
https://doi.org/10.3390/reactions7030052
Primary Topic
TiO2 Photocatalysis and Solar Cells
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article
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Study of the Degradation Kinetics and Photocatalytic Mineralization of the Dye 2-(4-Amino-2-Nitrophenyl)-1,3-Benzothiazole: Effect of TiO2 Dosage, pH, and Aeration on COD

Luz Genara Castañeda-Pérez, Héctor Ricardo Cuba-Torre, Daril Giovanni Martínez-Hilario, Juan Taumaturgo Medina-Collana et al.
Reactions
TiO2 Photocatalysis and Solar Cells
article

Study of the Degradation Kinetics and Photocatalytic Mineralization of the Dye 2-(4-Amino-2-Nitrophenyl)-1,3-Benzothiazole: Effect of TiO2 Dosage, pH, and Aeration on COD

Luz Genara Castañeda-Pérez, Héctor Ricardo Cuba-Torre, Daril Giovanni Martínez-Hilario, Juan Taumaturgo Medina-Collana, Luis Américo Carrasco-Venegas, César Gutiérrez-Cuba, Rodolfo Paz-Salazar, Flor Ortega-Blas, Salvador Trujillo Pérez
article en

Abstract

The objective of this study was to evaluate the solar photocatalytic degradation of the disperse textile dye 2-(4-amino-2-nitrophenyl)-1,3-benzothiazole using titanium dioxide nanoparticles (TiO2 P25) under a mean solar irradiance of 492 ± 58 W/m2, evaluating the effects of pH, photocatalyst concentration, and continuous aeration on process efficiency. The degradation of the dye was determined by monitoring its concentration by UV–Visible spectrophotometry, while the mineralization was evaluated by chemical oxygen demand (COD). Likewise, kinetic behavior was analyzed using pseudo-first-order and pseudo-second-order models. The results showed that the degradation efficiency increased with the concentration of TiO2, reaching the highest yield with 400 ppm of TiO2 and continuous aeration, which confirms that both variables are determining operating factors for maximizing photocatalytic efficiency. pH exerted a significant influence on the activity of the system, obtaining the highest degradation efficiencies and the greatest reductions in COD under slightly alkaline conditions (pH 8–9), a behavior attributed to the greater colloidal stability of TiO2 and the modification of its surface properties with respect to its point of zero charge (pHpzc ≈ 6.2). The pseudo-second-order model generally provided an adequate empirical description of the experimental data; however, the best-fitting model varied depending on the experimental condition. The simultaneous decrease in the concentration of the dye and the COD confirmed that the treatment produced not only the decolorization of the solution, but also the progressive oxidation of the organic matter. Integrating kinetic analysis with the simultaneous assessment of decolorization and COD enabled clear experimental differentiation between adsorption and photocatalysis, strengthening the interpretation of TiO2-based solar photocatalytic systems. In conclusion, solar photocatalysis using TiO2 and the optimization of operational variables constitute an effective treatment strategy that takes advantage of solar irradiation as the primary energy source, thereby reducing dependence on conventional artificial UV irradiation. Within the scope of this study, the combination of solar radiation, continuous aeration and appropriate operating conditions demonstrated promising potential for the treatment of textile wastewater containing persistent dyes.

ReactionsVol. 7(3)
Federico Villarreal National University (PE), Universidad Nacional del Callao (PE)
Clean water and sanitation
Openalex Percentile: Top 29%
TiO2 Photocatalysis and Solar Cells
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