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Non-Thermal Plasma Reduction of Ag(+) Ions into Silver Nanoparticles in Open Atmosphere under Statistically Optimized Conditions for Biological and Photocatalytic Applications

An environmentally friendly non-thermal DC plasma reduction route was adopted to reduce Ag(+) ions at the plasma–liquid interface into silver nanoparticles (AgNPs) under statistically optimized conditions for biological and photocatalytic applications. The efficiency and reactivity of AgNPs were imp...

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Autores principales: Altaf, Noor Ul Huda, Naz, Muhammad Yasin, Shukrullah, Shazia, Ghamkhar, Madiha, Irfan, Muhammad, Rahman, Saifur, Jakubowski, Tomasz, Alqurashi, Esam A., Glowacz, Adam, Mahnashi, Mater H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9181389/
https://www.ncbi.nlm.nih.gov/pubmed/35683124
http://dx.doi.org/10.3390/ma15113826
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author Altaf, Noor Ul Huda
Naz, Muhammad Yasin
Shukrullah, Shazia
Ghamkhar, Madiha
Irfan, Muhammad
Rahman, Saifur
Jakubowski, Tomasz
Alqurashi, Esam A.
Glowacz, Adam
Mahnashi, Mater H.
author_facet Altaf, Noor Ul Huda
Naz, Muhammad Yasin
Shukrullah, Shazia
Ghamkhar, Madiha
Irfan, Muhammad
Rahman, Saifur
Jakubowski, Tomasz
Alqurashi, Esam A.
Glowacz, Adam
Mahnashi, Mater H.
author_sort Altaf, Noor Ul Huda
collection PubMed
description An environmentally friendly non-thermal DC plasma reduction route was adopted to reduce Ag(+) ions at the plasma–liquid interface into silver nanoparticles (AgNPs) under statistically optimized conditions for biological and photocatalytic applications. The efficiency and reactivity of AgNPs were improved by statistically optimizing the reaction parameters with a Box–Behnken Design (BBD). The size of the AgNPs was chosen as a statistical response parameter, while the concentration of the stabilizer, the concentration of the silver salt, and the plasma reaction time were chosen as independent factors. The optimized parameters for the plasma production of AgNPs were estimated using a response surface methodology and a significant model p < 0.05. The AgNPs, prepared under optimized conditions, were characterized and then tested for their antibacterial, antioxidant, and photocatalytic potentials. The optimal conditions for these three activities were 3 mM of stabilizing agent, 5 mM of AgNO(3), and 30 min of reaction time. Having particles size of 19 to 37 nm under optimized conditions, the AgNPs revealed a 82.3% degradation of methyl orange dye under UV light irradiation. The antibacterial response of the optimized AgNPs against S. aureus and E. coli strains revealed inhabitation zones of 15 mm and 12 mm, respectively, which demonstrate an antioxidant activity of 81.2%.
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spelling pubmed-91813892022-06-10 Non-Thermal Plasma Reduction of Ag(+) Ions into Silver Nanoparticles in Open Atmosphere under Statistically Optimized Conditions for Biological and Photocatalytic Applications Altaf, Noor Ul Huda Naz, Muhammad Yasin Shukrullah, Shazia Ghamkhar, Madiha Irfan, Muhammad Rahman, Saifur Jakubowski, Tomasz Alqurashi, Esam A. Glowacz, Adam Mahnashi, Mater H. Materials (Basel) Article An environmentally friendly non-thermal DC plasma reduction route was adopted to reduce Ag(+) ions at the plasma–liquid interface into silver nanoparticles (AgNPs) under statistically optimized conditions for biological and photocatalytic applications. The efficiency and reactivity of AgNPs were improved by statistically optimizing the reaction parameters with a Box–Behnken Design (BBD). The size of the AgNPs was chosen as a statistical response parameter, while the concentration of the stabilizer, the concentration of the silver salt, and the plasma reaction time were chosen as independent factors. The optimized parameters for the plasma production of AgNPs were estimated using a response surface methodology and a significant model p < 0.05. The AgNPs, prepared under optimized conditions, were characterized and then tested for their antibacterial, antioxidant, and photocatalytic potentials. The optimal conditions for these three activities were 3 mM of stabilizing agent, 5 mM of AgNO(3), and 30 min of reaction time. Having particles size of 19 to 37 nm under optimized conditions, the AgNPs revealed a 82.3% degradation of methyl orange dye under UV light irradiation. The antibacterial response of the optimized AgNPs against S. aureus and E. coli strains revealed inhabitation zones of 15 mm and 12 mm, respectively, which demonstrate an antioxidant activity of 81.2%. MDPI 2022-05-27 /pmc/articles/PMC9181389/ /pubmed/35683124 http://dx.doi.org/10.3390/ma15113826 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Altaf, Noor Ul Huda
Naz, Muhammad Yasin
Shukrullah, Shazia
Ghamkhar, Madiha
Irfan, Muhammad
Rahman, Saifur
Jakubowski, Tomasz
Alqurashi, Esam A.
Glowacz, Adam
Mahnashi, Mater H.
Non-Thermal Plasma Reduction of Ag(+) Ions into Silver Nanoparticles in Open Atmosphere under Statistically Optimized Conditions for Biological and Photocatalytic Applications
title Non-Thermal Plasma Reduction of Ag(+) Ions into Silver Nanoparticles in Open Atmosphere under Statistically Optimized Conditions for Biological and Photocatalytic Applications
title_full Non-Thermal Plasma Reduction of Ag(+) Ions into Silver Nanoparticles in Open Atmosphere under Statistically Optimized Conditions for Biological and Photocatalytic Applications
title_fullStr Non-Thermal Plasma Reduction of Ag(+) Ions into Silver Nanoparticles in Open Atmosphere under Statistically Optimized Conditions for Biological and Photocatalytic Applications
title_full_unstemmed Non-Thermal Plasma Reduction of Ag(+) Ions into Silver Nanoparticles in Open Atmosphere under Statistically Optimized Conditions for Biological and Photocatalytic Applications
title_short Non-Thermal Plasma Reduction of Ag(+) Ions into Silver Nanoparticles in Open Atmosphere under Statistically Optimized Conditions for Biological and Photocatalytic Applications
title_sort non-thermal plasma reduction of ag(+) ions into silver nanoparticles in open atmosphere under statistically optimized conditions for biological and photocatalytic applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9181389/
https://www.ncbi.nlm.nih.gov/pubmed/35683124
http://dx.doi.org/10.3390/ma15113826
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