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Permeation Properties of Ions through Inorganic Silica-Based Membranes

The development of inorganic membranes has mainly found applicability in liquid separation technologies. However, only a few reports cite the permeation and separation of liquids through inorganic nanofiltration membranes compared with the more popular microfiltration membranes. Herein, we prepared...

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Autores principales: Yoshiura, Junko, Ishii, Katsunori, Saito, Yuta, Nagataki, Takaya, Nagataki, Yuhei, Ikeda, Ayumi, Nomura, Mikihiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7074570/
https://www.ncbi.nlm.nih.gov/pubmed/32046234
http://dx.doi.org/10.3390/membranes10020027
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author Yoshiura, Junko
Ishii, Katsunori
Saito, Yuta
Nagataki, Takaya
Nagataki, Yuhei
Ikeda, Ayumi
Nomura, Mikihiro
author_facet Yoshiura, Junko
Ishii, Katsunori
Saito, Yuta
Nagataki, Takaya
Nagataki, Yuhei
Ikeda, Ayumi
Nomura, Mikihiro
author_sort Yoshiura, Junko
collection PubMed
description The development of inorganic membranes has mainly found applicability in liquid separation technologies. However, only a few reports cite the permeation and separation of liquids through inorganic nanofiltration membranes compared with the more popular microfiltration membranes. Herein, we prepared silica membranes using 3,3,3-trifluoropropyltrimethoxysilane (TFPrTMOS) to investigate its liquid permeance performance using four different ion solutions (i.e., NaCl, Na(2)SO(4), MgCl(2), and MgSO(4)). The TFPrTMOS-derived membranes were deposited above a temperature of 175 °C, where the deposition behavior of TFPrTMOS was dependent on the organic functional groups decomposition temperature. The highest membrane rejection was from NaCl at 91.0% when deposited at 200 °C. For anions, the SO(4)(2−) rejections were the greatest. It was also possible to separate monovalent and divalent anions, as the negatively charged groups on the membrane surfaces retained pore sizes >1.48 nm. Ions were also easily separated by molecular sieving below a pore size of 0.50 nm. For the TFPrTMOS-derived membrane deposited at 175 °C, glucose showed 67% rejection, which was higher than that achieved through the propyltrimethoxysilane membrane. We infer that charge exclusion might be due to the dissociation of hydroxyl groups resulting from decomposition of organic groups. Pore size and organic functional group decomposition were found to be important for ion permeation.
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spelling pubmed-70745702020-03-20 Permeation Properties of Ions through Inorganic Silica-Based Membranes Yoshiura, Junko Ishii, Katsunori Saito, Yuta Nagataki, Takaya Nagataki, Yuhei Ikeda, Ayumi Nomura, Mikihiro Membranes (Basel) Article The development of inorganic membranes has mainly found applicability in liquid separation technologies. However, only a few reports cite the permeation and separation of liquids through inorganic nanofiltration membranes compared with the more popular microfiltration membranes. Herein, we prepared silica membranes using 3,3,3-trifluoropropyltrimethoxysilane (TFPrTMOS) to investigate its liquid permeance performance using four different ion solutions (i.e., NaCl, Na(2)SO(4), MgCl(2), and MgSO(4)). The TFPrTMOS-derived membranes were deposited above a temperature of 175 °C, where the deposition behavior of TFPrTMOS was dependent on the organic functional groups decomposition temperature. The highest membrane rejection was from NaCl at 91.0% when deposited at 200 °C. For anions, the SO(4)(2−) rejections were the greatest. It was also possible to separate monovalent and divalent anions, as the negatively charged groups on the membrane surfaces retained pore sizes >1.48 nm. Ions were also easily separated by molecular sieving below a pore size of 0.50 nm. For the TFPrTMOS-derived membrane deposited at 175 °C, glucose showed 67% rejection, which was higher than that achieved through the propyltrimethoxysilane membrane. We infer that charge exclusion might be due to the dissociation of hydroxyl groups resulting from decomposition of organic groups. Pore size and organic functional group decomposition were found to be important for ion permeation. MDPI 2020-02-08 /pmc/articles/PMC7074570/ /pubmed/32046234 http://dx.doi.org/10.3390/membranes10020027 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
Yoshiura, Junko
Ishii, Katsunori
Saito, Yuta
Nagataki, Takaya
Nagataki, Yuhei
Ikeda, Ayumi
Nomura, Mikihiro
Permeation Properties of Ions through Inorganic Silica-Based Membranes
title Permeation Properties of Ions through Inorganic Silica-Based Membranes
title_full Permeation Properties of Ions through Inorganic Silica-Based Membranes
title_fullStr Permeation Properties of Ions through Inorganic Silica-Based Membranes
title_full_unstemmed Permeation Properties of Ions through Inorganic Silica-Based Membranes
title_short Permeation Properties of Ions through Inorganic Silica-Based Membranes
title_sort permeation properties of ions through inorganic silica-based membranes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7074570/
https://www.ncbi.nlm.nih.gov/pubmed/32046234
http://dx.doi.org/10.3390/membranes10020027
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