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Rapid Water Softening with TEMPO-Oxidized/Phosphorylated Nanopapers

Water hardness not only constitutes a significant hazard for the functionality of water infrastructure but is also associated with health concerns. Commonly, water hardness is tackled with synthetic ion-exchange resins or membranes that have the drawbacks of requiring the awkward disposal of saturat...

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Autores principales: Mautner, Andreas, Kobkeatthawin, Thawanrat, Mayer, Florian, Plessl, Christof, Gorgieva, Selestina, Kokol, Vanja, Bismarck, Alexander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6409817/
https://www.ncbi.nlm.nih.gov/pubmed/30678201
http://dx.doi.org/10.3390/nano9020136
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author Mautner, Andreas
Kobkeatthawin, Thawanrat
Mayer, Florian
Plessl, Christof
Gorgieva, Selestina
Kokol, Vanja
Bismarck, Alexander
author_facet Mautner, Andreas
Kobkeatthawin, Thawanrat
Mayer, Florian
Plessl, Christof
Gorgieva, Selestina
Kokol, Vanja
Bismarck, Alexander
author_sort Mautner, Andreas
collection PubMed
description Water hardness not only constitutes a significant hazard for the functionality of water infrastructure but is also associated with health concerns. Commonly, water hardness is tackled with synthetic ion-exchange resins or membranes that have the drawbacks of requiring the awkward disposal of saturated materials and being based on fossil resources. In this work, we present a renewable nanopaper for the purpose of water softening prepared from phosphorylated TEMPO-oxidized cellulose nanofibrils (PT-CNF). Nanopapers were prepared from CNF suspensions in water (PT-CNF nanopapers) or low surface tension organic liquids (ethanol), named EPT-CNF nanopapers, respectively. Nanopaper preparation from ethanol resulted in a significantly increased porosity of the nanopapers enabling much higher permeances: more than 10,000× higher as compared to nanopapers from aqueous suspensions. The adsorption capacity for Ca(2+) of nanopapers from aqueous suspensions was 17 mg g(−1) and 5 mg g(−1) for Mg(2+); however, EPT-CNF nanopapers adsorbed more than 90 mg g(−1) Ca(2+) and almost 70 mg g(−1) Mg(2+). The higher adsorption capacity was a result of the increased accessibility of functional groups in the bulk of the nanopapers caused by the higher porosity of nanopapers prepared from ethanol. The combination of very high permeance and adsorption capacity constitutes a high overall performance of these nanopapers in water softening applications.
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spelling pubmed-64098172019-03-11 Rapid Water Softening with TEMPO-Oxidized/Phosphorylated Nanopapers Mautner, Andreas Kobkeatthawin, Thawanrat Mayer, Florian Plessl, Christof Gorgieva, Selestina Kokol, Vanja Bismarck, Alexander Nanomaterials (Basel) Article Water hardness not only constitutes a significant hazard for the functionality of water infrastructure but is also associated with health concerns. Commonly, water hardness is tackled with synthetic ion-exchange resins or membranes that have the drawbacks of requiring the awkward disposal of saturated materials and being based on fossil resources. In this work, we present a renewable nanopaper for the purpose of water softening prepared from phosphorylated TEMPO-oxidized cellulose nanofibrils (PT-CNF). Nanopapers were prepared from CNF suspensions in water (PT-CNF nanopapers) or low surface tension organic liquids (ethanol), named EPT-CNF nanopapers, respectively. Nanopaper preparation from ethanol resulted in a significantly increased porosity of the nanopapers enabling much higher permeances: more than 10,000× higher as compared to nanopapers from aqueous suspensions. The adsorption capacity for Ca(2+) of nanopapers from aqueous suspensions was 17 mg g(−1) and 5 mg g(−1) for Mg(2+); however, EPT-CNF nanopapers adsorbed more than 90 mg g(−1) Ca(2+) and almost 70 mg g(−1) Mg(2+). The higher adsorption capacity was a result of the increased accessibility of functional groups in the bulk of the nanopapers caused by the higher porosity of nanopapers prepared from ethanol. The combination of very high permeance and adsorption capacity constitutes a high overall performance of these nanopapers in water softening applications. MDPI 2019-01-22 /pmc/articles/PMC6409817/ /pubmed/30678201 http://dx.doi.org/10.3390/nano9020136 Text en © 2019 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
Mautner, Andreas
Kobkeatthawin, Thawanrat
Mayer, Florian
Plessl, Christof
Gorgieva, Selestina
Kokol, Vanja
Bismarck, Alexander
Rapid Water Softening with TEMPO-Oxidized/Phosphorylated Nanopapers
title Rapid Water Softening with TEMPO-Oxidized/Phosphorylated Nanopapers
title_full Rapid Water Softening with TEMPO-Oxidized/Phosphorylated Nanopapers
title_fullStr Rapid Water Softening with TEMPO-Oxidized/Phosphorylated Nanopapers
title_full_unstemmed Rapid Water Softening with TEMPO-Oxidized/Phosphorylated Nanopapers
title_short Rapid Water Softening with TEMPO-Oxidized/Phosphorylated Nanopapers
title_sort rapid water softening with tempo-oxidized/phosphorylated nanopapers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6409817/
https://www.ncbi.nlm.nih.gov/pubmed/30678201
http://dx.doi.org/10.3390/nano9020136
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