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A Novel Metal-Containing Mesoporous Silica Composite for the Decolorization of Rhodamine B: Effect of Metal Content on Structure and Performance

A series of novel Mn(x)Fe(y)@SiO(2) (x,y = 1–20%) nanocomposites were synthesized for the first time via the sol-gel/combustion method with different content of precursors (Mn and Fe acetate salts). The effect of precursor content and ratio on physicochemical properties were observed by various char...

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Autores principales: Ghaffari, Yasaman, Saifuddin, Md, Kim, Suho, Beak, Soyoung, Bae, Jiyeol, Kim, Kwang Soo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736502/
https://www.ncbi.nlm.nih.gov/pubmed/36500731
http://dx.doi.org/10.3390/nano12234108
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author Ghaffari, Yasaman
Saifuddin, Md
Kim, Suho
Beak, Soyoung
Bae, Jiyeol
Kim, Kwang Soo
author_facet Ghaffari, Yasaman
Saifuddin, Md
Kim, Suho
Beak, Soyoung
Bae, Jiyeol
Kim, Kwang Soo
author_sort Ghaffari, Yasaman
collection PubMed
description A series of novel Mn(x)Fe(y)@SiO(2) (x,y = 1–20%) nanocomposites were synthesized for the first time via the sol-gel/combustion method with different content of precursors (Mn and Fe acetate salts). The effect of precursor content and ratio on physicochemical properties were observed by various characterization methods. Moreover, Rhodamine B (RhB) was chosen as the target pollutant to test the performance of these nanocomposites under a photocatalytic Fenton-like reaction. The results showed that the nanocomposite morphology improved by increasing Fe and Mn content. In this study, interesting behavior was observed in BET results which were different from the fact that increasing metal content can decrease the surface area. This study revealed that one metal could be more critical in controlling the properties than another. Moreover, the precursor ratio appears to have a more tangible effect on the surface area than the effect of precursor content. Among all synthesized nanocomposites, Mn(1)Fe(5)@SiO(2) showed the highest surface area of 654.95 m(2)/g. At optimum batch conditions (temp = 25 °C, catalyst dosage = 1 g L(−1), H(2)O(2) = 75 mmolL(−1), and initial RhB concentration = 50 mg L(−1)), complete removal (simultaneous adsorption/degradation) occurred using Mn(1)Fe(5)@SiO(2) at neutral pH. This study showed that the designed nanomaterial could be used as a dual functional adsorbent/photocatalyst in different environmental applications.
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spelling pubmed-97365022022-12-11 A Novel Metal-Containing Mesoporous Silica Composite for the Decolorization of Rhodamine B: Effect of Metal Content on Structure and Performance Ghaffari, Yasaman Saifuddin, Md Kim, Suho Beak, Soyoung Bae, Jiyeol Kim, Kwang Soo Nanomaterials (Basel) Article A series of novel Mn(x)Fe(y)@SiO(2) (x,y = 1–20%) nanocomposites were synthesized for the first time via the sol-gel/combustion method with different content of precursors (Mn and Fe acetate salts). The effect of precursor content and ratio on physicochemical properties were observed by various characterization methods. Moreover, Rhodamine B (RhB) was chosen as the target pollutant to test the performance of these nanocomposites under a photocatalytic Fenton-like reaction. The results showed that the nanocomposite morphology improved by increasing Fe and Mn content. In this study, interesting behavior was observed in BET results which were different from the fact that increasing metal content can decrease the surface area. This study revealed that one metal could be more critical in controlling the properties than another. Moreover, the precursor ratio appears to have a more tangible effect on the surface area than the effect of precursor content. Among all synthesized nanocomposites, Mn(1)Fe(5)@SiO(2) showed the highest surface area of 654.95 m(2)/g. At optimum batch conditions (temp = 25 °C, catalyst dosage = 1 g L(−1), H(2)O(2) = 75 mmolL(−1), and initial RhB concentration = 50 mg L(−1)), complete removal (simultaneous adsorption/degradation) occurred using Mn(1)Fe(5)@SiO(2) at neutral pH. This study showed that the designed nanomaterial could be used as a dual functional adsorbent/photocatalyst in different environmental applications. MDPI 2022-11-22 /pmc/articles/PMC9736502/ /pubmed/36500731 http://dx.doi.org/10.3390/nano12234108 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
Ghaffari, Yasaman
Saifuddin, Md
Kim, Suho
Beak, Soyoung
Bae, Jiyeol
Kim, Kwang Soo
A Novel Metal-Containing Mesoporous Silica Composite for the Decolorization of Rhodamine B: Effect of Metal Content on Structure and Performance
title A Novel Metal-Containing Mesoporous Silica Composite for the Decolorization of Rhodamine B: Effect of Metal Content on Structure and Performance
title_full A Novel Metal-Containing Mesoporous Silica Composite for the Decolorization of Rhodamine B: Effect of Metal Content on Structure and Performance
title_fullStr A Novel Metal-Containing Mesoporous Silica Composite for the Decolorization of Rhodamine B: Effect of Metal Content on Structure and Performance
title_full_unstemmed A Novel Metal-Containing Mesoporous Silica Composite for the Decolorization of Rhodamine B: Effect of Metal Content on Structure and Performance
title_short A Novel Metal-Containing Mesoporous Silica Composite for the Decolorization of Rhodamine B: Effect of Metal Content on Structure and Performance
title_sort novel metal-containing mesoporous silica composite for the decolorization of rhodamine b: effect of metal content on structure and performance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736502/
https://www.ncbi.nlm.nih.gov/pubmed/36500731
http://dx.doi.org/10.3390/nano12234108
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