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Sustainable One-Step Solid-State Synthesis of Antibacterially Active Silver Nanoparticles Using Mechanochemistry

A combination of solid-state mechanochemical and green approaches for the synthesis of silver nanoparticles (AgNPs) is explored in this study. Thymus serpyllum L. (SER), Sambucus nigra L. (SAM) and Thymus vulgaris L. (TYM) plants were successfully applied to reduce AgNO(3) to AgNPs, as confirmed by...

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Autores principales: Kováčová, Mária, Daneu, Nina, Tkáčiková, Ľudmila, Búreš, Radovan, Dutková, Erika, Stahorský, Martin, Bujňáková, Zdenka Lukáčová, Baláž, Matej
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7692266/
https://www.ncbi.nlm.nih.gov/pubmed/33113789
http://dx.doi.org/10.3390/nano10112119
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author Kováčová, Mária
Daneu, Nina
Tkáčiková, Ľudmila
Búreš, Radovan
Dutková, Erika
Stahorský, Martin
Bujňáková, Zdenka Lukáčová
Baláž, Matej
author_facet Kováčová, Mária
Daneu, Nina
Tkáčiková, Ľudmila
Búreš, Radovan
Dutková, Erika
Stahorský, Martin
Bujňáková, Zdenka Lukáčová
Baláž, Matej
author_sort Kováčová, Mária
collection PubMed
description A combination of solid-state mechanochemical and green approaches for the synthesis of silver nanoparticles (AgNPs) is explored in this study. Thymus serpyllum L. (SER), Sambucus nigra L. (SAM) and Thymus vulgaris L. (TYM) plants were successfully applied to reduce AgNO(3) to AgNPs, as confirmed by X-ray diffraction analysis, with SER being the best reducing agent, and TYM being the worst. The experiments were performed via a one-step planetary milling process, where various AgNO(3):plant mass ratios (1:1, 1:10, 1:50 and 1:100) were investigated. Atomic absorption spectrometry indicated that the stability of the mechanochemically produced AgNPs increased markedly when a sufficiently large quantity of the reducing plant was used. Furthermore, when larger quantities of plant material were employed, the crystallite size of the AgNPs decreased. TEM analysis revealed that all AgNPs produced from both AgNO(3):plant ratios 1:1 and 1:10 exhibit the bimodal size distribution with the larger fraction with size in tens of nm and the smaller one below 10 nm in size. The antibacterial activity of the produced AgNPs was observed only for AgNO(3):plant ratio 1:1, with the AgNPs prepared using SER showing the greatest antibacterial properties.
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spelling pubmed-76922662020-11-28 Sustainable One-Step Solid-State Synthesis of Antibacterially Active Silver Nanoparticles Using Mechanochemistry Kováčová, Mária Daneu, Nina Tkáčiková, Ľudmila Búreš, Radovan Dutková, Erika Stahorský, Martin Bujňáková, Zdenka Lukáčová Baláž, Matej Nanomaterials (Basel) Article A combination of solid-state mechanochemical and green approaches for the synthesis of silver nanoparticles (AgNPs) is explored in this study. Thymus serpyllum L. (SER), Sambucus nigra L. (SAM) and Thymus vulgaris L. (TYM) plants were successfully applied to reduce AgNO(3) to AgNPs, as confirmed by X-ray diffraction analysis, with SER being the best reducing agent, and TYM being the worst. The experiments were performed via a one-step planetary milling process, where various AgNO(3):plant mass ratios (1:1, 1:10, 1:50 and 1:100) were investigated. Atomic absorption spectrometry indicated that the stability of the mechanochemically produced AgNPs increased markedly when a sufficiently large quantity of the reducing plant was used. Furthermore, when larger quantities of plant material were employed, the crystallite size of the AgNPs decreased. TEM analysis revealed that all AgNPs produced from both AgNO(3):plant ratios 1:1 and 1:10 exhibit the bimodal size distribution with the larger fraction with size in tens of nm and the smaller one below 10 nm in size. The antibacterial activity of the produced AgNPs was observed only for AgNO(3):plant ratio 1:1, with the AgNPs prepared using SER showing the greatest antibacterial properties. MDPI 2020-10-25 /pmc/articles/PMC7692266/ /pubmed/33113789 http://dx.doi.org/10.3390/nano10112119 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kováčová, Mária
Daneu, Nina
Tkáčiková, Ľudmila
Búreš, Radovan
Dutková, Erika
Stahorský, Martin
Bujňáková, Zdenka Lukáčová
Baláž, Matej
Sustainable One-Step Solid-State Synthesis of Antibacterially Active Silver Nanoparticles Using Mechanochemistry
title Sustainable One-Step Solid-State Synthesis of Antibacterially Active Silver Nanoparticles Using Mechanochemistry
title_full Sustainable One-Step Solid-State Synthesis of Antibacterially Active Silver Nanoparticles Using Mechanochemistry
title_fullStr Sustainable One-Step Solid-State Synthesis of Antibacterially Active Silver Nanoparticles Using Mechanochemistry
title_full_unstemmed Sustainable One-Step Solid-State Synthesis of Antibacterially Active Silver Nanoparticles Using Mechanochemistry
title_short Sustainable One-Step Solid-State Synthesis of Antibacterially Active Silver Nanoparticles Using Mechanochemistry
title_sort sustainable one-step solid-state synthesis of antibacterially active silver nanoparticles using mechanochemistry
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7692266/
https://www.ncbi.nlm.nih.gov/pubmed/33113789
http://dx.doi.org/10.3390/nano10112119
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