Degradation of textiles dyes and scavenging activity of spherical shape obtained anatase phase of Co–Ni-doped TiO2 nanocatalyst
Dye contamination in water is a global concern due to its harmful impact on human health and aquatic ecosystems. Particularly, the textile industry contributes hazardous colored pollutants that often find their way untreated into nearby natural water bodies. Among various methods, photocatalysis sta...
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Published in | Journal of materials science. Materials in electronics Vol. 35; no. 2; p. 134 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
New York
Springer US
01.01.2024
Springer Nature B.V |
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Abstract | Dye contamination in water is a global concern due to its harmful impact on human health and aquatic ecosystems. Particularly, the textile industry contributes hazardous colored pollutants that often find their way untreated into nearby natural water bodies. Among various methods, photocatalysis stands out as the most effective solution for addressing dye pollution, with titanium dioxide (TiO
2
) being a leading photocatalyst due to its exceptional capability for dye removal from wastewater. To enhance the efficiency of dye degradation under UV light, extensive research has focused on augmenting TiO
2
efficiency through doping and altering its morphology. In this study, the anatase phase of cobalt–nickel (Co–Ni)-doped TiO
2
nanoparticles (TNPs) was synthesized using both chemical and green methods, employing a microwave-assisted technique. These methods incorporated polyvinylpyrrolidone (PVP) and
Tinospora Cordifolia
(
T. Cordifolia
) for chemical and green encapsulation, respectively. Various physicochemical attributes of the encapsulated Co–Ni-doped TNPs were analyzed through a range of characterization spectroscopy. The encapsulated NPs exhibited tetragonal crystal structure and spherical morphology with particle size ranging from 17 to 24 nm. During the evaluation of their photocatalytic performance toward methyl orange (MO) and methylene blue (MB), it was noted that as the dosage of NPs catalysts increased, the degradation rate also showed an augmentation when exposed to UV radiation. About 100% value for degradation was noted for MO and MB dyes'. Furthermore, encapsulated Co–Ni-doped NPs displayed significant antioxidant activity, with efficacy upto 93% for DPPH assay. |
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AbstractList | Dye contamination in water is a global concern due to its harmful impact on human health and aquatic ecosystems. Particularly, the textile industry contributes hazardous colored pollutants that often find their way untreated into nearby natural water bodies. Among various methods, photocatalysis stands out as the most effective solution for addressing dye pollution, with titanium dioxide (TiO
2
) being a leading photocatalyst due to its exceptional capability for dye removal from wastewater. To enhance the efficiency of dye degradation under UV light, extensive research has focused on augmenting TiO
2
efficiency through doping and altering its morphology. In this study, the anatase phase of cobalt–nickel (Co–Ni)-doped TiO
2
nanoparticles (TNPs) was synthesized using both chemical and green methods, employing a microwave-assisted technique. These methods incorporated polyvinylpyrrolidone (PVP) and
Tinospora Cordifolia
(
T. Cordifolia
) for chemical and green encapsulation, respectively. Various physicochemical attributes of the encapsulated Co–Ni-doped TNPs were analyzed through a range of characterization spectroscopy. The encapsulated NPs exhibited tetragonal crystal structure and spherical morphology with particle size ranging from 17 to 24 nm. During the evaluation of their photocatalytic performance toward methyl orange (MO) and methylene blue (MB), it was noted that as the dosage of NPs catalysts increased, the degradation rate also showed an augmentation when exposed to UV radiation. About 100% value for degradation was noted for MO and MB dyes'. Furthermore, encapsulated Co–Ni-doped NPs displayed significant antioxidant activity, with efficacy upto 93% for DPPH assay. Dye contamination in water is a global concern due to its harmful impact on human health and aquatic ecosystems. Particularly, the textile industry contributes hazardous colored pollutants that often find their way untreated into nearby natural water bodies. Among various methods, photocatalysis stands out as the most effective solution for addressing dye pollution, with titanium dioxide (TiO2) being a leading photocatalyst due to its exceptional capability for dye removal from wastewater. To enhance the efficiency of dye degradation under UV light, extensive research has focused on augmenting TiO2 efficiency through doping and altering its morphology. In this study, the anatase phase of cobalt–nickel (Co–Ni)-doped TiO2 nanoparticles (TNPs) was synthesized using both chemical and green methods, employing a microwave-assisted technique. These methods incorporated polyvinylpyrrolidone (PVP) and Tinospora Cordifolia (T. Cordifolia) for chemical and green encapsulation, respectively. Various physicochemical attributes of the encapsulated Co–Ni-doped TNPs were analyzed through a range of characterization spectroscopy. The encapsulated NPs exhibited tetragonal crystal structure and spherical morphology with particle size ranging from 17 to 24 nm. During the evaluation of their photocatalytic performance toward methyl orange (MO) and methylene blue (MB), it was noted that as the dosage of NPs catalysts increased, the degradation rate also showed an augmentation when exposed to UV radiation. About 100% value for degradation was noted for MO and MB dyes'. Furthermore, encapsulated Co–Ni-doped NPs displayed significant antioxidant activity, with efficacy upto 93% for DPPH assay. |
ArticleNumber | 134 |
Author | Thakur, Nikesh Thakur, Naveen |
Author_xml | – sequence: 1 givenname: Nikesh surname: Thakur fullname: Thakur, Nikesh organization: Department of Physics, Career Point University, Centre for Nano-Science and Technology, Career Point University – sequence: 2 givenname: Naveen orcidid: 0000-0001-6668-612X surname: Thakur fullname: Thakur, Naveen email: naveenthakur2327@gmail.com organization: Department of Physics, Career Point University, Centre for Nano-Science and Technology, Career Point University |
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Copyright | The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature 2024. Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law. |
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SubjectTerms | Anatase Characterization and Evaluation of Materials Chemical synthesis Chemistry and Materials Science Cobalt Crystal structure Dyes Encapsulation Materials Science Methylene blue Morphology Nanoparticles Nickel Optical and Electronic Materials Photocatalysis Photodegradation Polyvinylpyrrolidone Scavenging Textiles Titanium dioxide Ultraviolet radiation Wastewater treatment |
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Title | Degradation of textiles dyes and scavenging activity of spherical shape obtained anatase phase of Co–Ni-doped TiO2 nanocatalyst |
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