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Physicochemical Properties of Mesoporous Organo-Silica Xerogels Fabricated through Organo Catalyst

The physicochemical properties of organo-silica xerogels derived from organo catalyst were pervasively investigated, including the effect of one-step catalyst (citric acid) and two-step catalyst (acid-base), and also to observe the effect of sol pH of organo-silica xerogel toward the structure and d...

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Autores principales: Elma, Muthia, Sumardi, Anna, Paramita, Adhe, Rahma, Aulia, Lestari, Aptar Eka, Yanto, Dede Heri Yuli, Hadi, Sutarto, Assyaifi, Zaini Lambri, Sunardi, Raharjo, Yanuardi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8401293/
https://www.ncbi.nlm.nih.gov/pubmed/34436370
http://dx.doi.org/10.3390/membranes11080607
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author Elma, Muthia
Sumardi, Anna
Paramita, Adhe
Rahma, Aulia
Lestari, Aptar Eka
Yanto, Dede Heri Yuli
Hadi, Sutarto
Assyaifi, Zaini Lambri
Sunardi,
Raharjo, Yanuardi
author_facet Elma, Muthia
Sumardi, Anna
Paramita, Adhe
Rahma, Aulia
Lestari, Aptar Eka
Yanto, Dede Heri Yuli
Hadi, Sutarto
Assyaifi, Zaini Lambri
Sunardi,
Raharjo, Yanuardi
author_sort Elma, Muthia
collection PubMed
description The physicochemical properties of organo-silica xerogels derived from organo catalyst were pervasively investigated, including the effect of one-step catalyst (citric acid) and two-step catalyst (acid-base), and also to observe the effect of sol pH of organo-silica xerogel toward the structure and deconvolution characteristic. The organo-silica xerogels were characterized by FTIR, TGA and nitrogen sorption to obtain the physicochemical properties. The silica sol–gel method was applied to processed materials by employing TEOS (tetraethyl orthosilicate) as the main precursor. The final molar ratio of organo-silica was 1:38:x:y:5 (TEOS:ethanol: citric acid: NH(3):H(2)O) where x is citric acid concentration (0.1–10 × 10(−2) M) and y is ammonia concentration (0 to 3 × 10(−3) M). FTIR spectra shows that the one-step catalyst xerogel using citric acid was handing over the higher Si-O-Si concentration as well as Si-C bonding than the dual catalyst xerogels with the presence of a base catalyst. The results exhibited that the highest relative area ratio of silanol/siloxane were 0.2972 and 0.1262 for organo catalyst loading at pH 6 and 6.5 of organo-silica sols, respectively. On the other hand, the organo-silica matrices in this work showed high surface area 546 m(2) g(−1) pH 6.5 (0.07 × 10(−2) N citric acid) with pore size ~2.9 nm. It is concluded that the xerogels have mesoporous structures, which are effective for further application to separate NaCl in water desalination.
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spelling pubmed-84012932021-08-29 Physicochemical Properties of Mesoporous Organo-Silica Xerogels Fabricated through Organo Catalyst Elma, Muthia Sumardi, Anna Paramita, Adhe Rahma, Aulia Lestari, Aptar Eka Yanto, Dede Heri Yuli Hadi, Sutarto Assyaifi, Zaini Lambri Sunardi, Raharjo, Yanuardi Membranes (Basel) Article The physicochemical properties of organo-silica xerogels derived from organo catalyst were pervasively investigated, including the effect of one-step catalyst (citric acid) and two-step catalyst (acid-base), and also to observe the effect of sol pH of organo-silica xerogel toward the structure and deconvolution characteristic. The organo-silica xerogels were characterized by FTIR, TGA and nitrogen sorption to obtain the physicochemical properties. The silica sol–gel method was applied to processed materials by employing TEOS (tetraethyl orthosilicate) as the main precursor. The final molar ratio of organo-silica was 1:38:x:y:5 (TEOS:ethanol: citric acid: NH(3):H(2)O) where x is citric acid concentration (0.1–10 × 10(−2) M) and y is ammonia concentration (0 to 3 × 10(−3) M). FTIR spectra shows that the one-step catalyst xerogel using citric acid was handing over the higher Si-O-Si concentration as well as Si-C bonding than the dual catalyst xerogels with the presence of a base catalyst. The results exhibited that the highest relative area ratio of silanol/siloxane were 0.2972 and 0.1262 for organo catalyst loading at pH 6 and 6.5 of organo-silica sols, respectively. On the other hand, the organo-silica matrices in this work showed high surface area 546 m(2) g(−1) pH 6.5 (0.07 × 10(−2) N citric acid) with pore size ~2.9 nm. It is concluded that the xerogels have mesoporous structures, which are effective for further application to separate NaCl in water desalination. MDPI 2021-08-10 /pmc/articles/PMC8401293/ /pubmed/34436370 http://dx.doi.org/10.3390/membranes11080607 Text en © 2021 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
Elma, Muthia
Sumardi, Anna
Paramita, Adhe
Rahma, Aulia
Lestari, Aptar Eka
Yanto, Dede Heri Yuli
Hadi, Sutarto
Assyaifi, Zaini Lambri
Sunardi,
Raharjo, Yanuardi
Physicochemical Properties of Mesoporous Organo-Silica Xerogels Fabricated through Organo Catalyst
title Physicochemical Properties of Mesoporous Organo-Silica Xerogels Fabricated through Organo Catalyst
title_full Physicochemical Properties of Mesoporous Organo-Silica Xerogels Fabricated through Organo Catalyst
title_fullStr Physicochemical Properties of Mesoporous Organo-Silica Xerogels Fabricated through Organo Catalyst
title_full_unstemmed Physicochemical Properties of Mesoporous Organo-Silica Xerogels Fabricated through Organo Catalyst
title_short Physicochemical Properties of Mesoporous Organo-Silica Xerogels Fabricated through Organo Catalyst
title_sort physicochemical properties of mesoporous organo-silica xerogels fabricated through organo catalyst
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8401293/
https://www.ncbi.nlm.nih.gov/pubmed/34436370
http://dx.doi.org/10.3390/membranes11080607
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