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Surface modification of TiO(2)/ZnO nanoparticles by organic acids with enhanced methylene blue and rhodamine B dye adsorption properties

The United Nations Organization (UNO) has revealed that approximately 2.1 billion people do not have access to treated water. Methylene blue (MB) and rhodamine B are produced as water pollutants in textile, plastic, and dye industries. In this study, oxalic acid or lactic acid surface-modification w...

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Autores principales: Andrade-Guel, M., Cabello-Alvarado, C., Bartolo-Pérez, P., Medellin-Banda, D. I., Ávila-Orta, C. A., Cruz-Ortiz, B., Espinosa-Muñoz, A., Cadenas Pliego, G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9535401/
https://www.ncbi.nlm.nih.gov/pubmed/36320524
http://dx.doi.org/10.1039/d2ra04961a
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author Andrade-Guel, M.
Cabello-Alvarado, C.
Bartolo-Pérez, P.
Medellin-Banda, D. I.
Ávila-Orta, C. A.
Cruz-Ortiz, B.
Espinosa-Muñoz, A.
Cadenas Pliego, G.
author_facet Andrade-Guel, M.
Cabello-Alvarado, C.
Bartolo-Pérez, P.
Medellin-Banda, D. I.
Ávila-Orta, C. A.
Cruz-Ortiz, B.
Espinosa-Muñoz, A.
Cadenas Pliego, G.
author_sort Andrade-Guel, M.
collection PubMed
description The United Nations Organization (UNO) has revealed that approximately 2.1 billion people do not have access to treated water. Methylene blue (MB) and rhodamine B are produced as water pollutants in textile, plastic, and dye industries. In this study, oxalic acid or lactic acid surface-modification were applied to TiO(2)/ZnO nanoparticles aiming to improve antibacterial and adsorption properties. The mixtures containing the corresponding acid and nanoparticles in 0.25 : 1/0.5 : 1 ratios of ZnO and TiO(2) correspondingly were subjected to ultrasonic treatment with a catenoidal ultrasonic probe coupled to a homemade ultrasonic generator with an output power of 750 W, wave amplitude of 50% and variable frequency in the range of 15–50 kHz. To verify the influence of the ultrasonic treatment, different treatment times of 30, 45, 60, and 90 min were applied. Unmodified and modified TiO(2)/ZnO nanoparticles were characterized by FTIR, TGA, XRD, SEM, and XPS. From the results, obtained from the physicochemical characterization, in the ZTO90 and ZTL90 samples a greater modification was shown. The SEM images showed that a coating was present on the surface of the ceramic particles of the ZTL90 sample. The O 1s deconvolution in the XPS spectra indicates a greater presence of C[double bond, length as m-dash]O bonds in the ZTL90 sample. In parallel, the sample ZTL90 presented 85 and 89% adsorption efficiency for MB and rhodamine B dyes in a time of 12 min, and important antibacterial activity against E. coli and S. epidermis could be evidenced.
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spelling pubmed-95354012022-10-31 Surface modification of TiO(2)/ZnO nanoparticles by organic acids with enhanced methylene blue and rhodamine B dye adsorption properties Andrade-Guel, M. Cabello-Alvarado, C. Bartolo-Pérez, P. Medellin-Banda, D. I. Ávila-Orta, C. A. Cruz-Ortiz, B. Espinosa-Muñoz, A. Cadenas Pliego, G. RSC Adv Chemistry The United Nations Organization (UNO) has revealed that approximately 2.1 billion people do not have access to treated water. Methylene blue (MB) and rhodamine B are produced as water pollutants in textile, plastic, and dye industries. In this study, oxalic acid or lactic acid surface-modification were applied to TiO(2)/ZnO nanoparticles aiming to improve antibacterial and adsorption properties. The mixtures containing the corresponding acid and nanoparticles in 0.25 : 1/0.5 : 1 ratios of ZnO and TiO(2) correspondingly were subjected to ultrasonic treatment with a catenoidal ultrasonic probe coupled to a homemade ultrasonic generator with an output power of 750 W, wave amplitude of 50% and variable frequency in the range of 15–50 kHz. To verify the influence of the ultrasonic treatment, different treatment times of 30, 45, 60, and 90 min were applied. Unmodified and modified TiO(2)/ZnO nanoparticles were characterized by FTIR, TGA, XRD, SEM, and XPS. From the results, obtained from the physicochemical characterization, in the ZTO90 and ZTL90 samples a greater modification was shown. The SEM images showed that a coating was present on the surface of the ceramic particles of the ZTL90 sample. The O 1s deconvolution in the XPS spectra indicates a greater presence of C[double bond, length as m-dash]O bonds in the ZTL90 sample. In parallel, the sample ZTL90 presented 85 and 89% adsorption efficiency for MB and rhodamine B dyes in a time of 12 min, and important antibacterial activity against E. coli and S. epidermis could be evidenced. The Royal Society of Chemistry 2022-10-06 /pmc/articles/PMC9535401/ /pubmed/36320524 http://dx.doi.org/10.1039/d2ra04961a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Andrade-Guel, M.
Cabello-Alvarado, C.
Bartolo-Pérez, P.
Medellin-Banda, D. I.
Ávila-Orta, C. A.
Cruz-Ortiz, B.
Espinosa-Muñoz, A.
Cadenas Pliego, G.
Surface modification of TiO(2)/ZnO nanoparticles by organic acids with enhanced methylene blue and rhodamine B dye adsorption properties
title Surface modification of TiO(2)/ZnO nanoparticles by organic acids with enhanced methylene blue and rhodamine B dye adsorption properties
title_full Surface modification of TiO(2)/ZnO nanoparticles by organic acids with enhanced methylene blue and rhodamine B dye adsorption properties
title_fullStr Surface modification of TiO(2)/ZnO nanoparticles by organic acids with enhanced methylene blue and rhodamine B dye adsorption properties
title_full_unstemmed Surface modification of TiO(2)/ZnO nanoparticles by organic acids with enhanced methylene blue and rhodamine B dye adsorption properties
title_short Surface modification of TiO(2)/ZnO nanoparticles by organic acids with enhanced methylene blue and rhodamine B dye adsorption properties
title_sort surface modification of tio(2)/zno nanoparticles by organic acids with enhanced methylene blue and rhodamine b dye adsorption properties
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9535401/
https://www.ncbi.nlm.nih.gov/pubmed/36320524
http://dx.doi.org/10.1039/d2ra04961a
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