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VAR Fabric Modification: Inducing Antibacterial Properties, Altering Wettability/Water Repellence, and Understanding Reactivity at the Molecular Level

[Image: see text] The present work focuses on the surface coating of VAR technical fibers, consisting of 64% viscose (cellulose), 24% Kevlar, 10% other types of polyamides, and 2% antistatic polymers. Kevlar is an aramid material exhibiting excellent mechanical properties, while cellulose is a natur...

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Autores principales: Tonis, Efstathios, Frousiou, Efrosyni, Heliopoulos, Nikolaos S., Kagkoura, Antonia, Stangel, Christina, Siamidis, Dionysios, Galeou, Angeliki, Prombona, Anastasia, Stamatakis, Kostas, Boukos, Nikos, Tagmatarchis, Nikos, Vougioukalakis, Georgios C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10688117/
https://www.ncbi.nlm.nih.gov/pubmed/38046315
http://dx.doi.org/10.1021/acsomega.3c05552
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author Tonis, Efstathios
Frousiou, Efrosyni
Heliopoulos, Nikolaos S.
Kagkoura, Antonia
Stangel, Christina
Siamidis, Dionysios
Galeou, Angeliki
Prombona, Anastasia
Stamatakis, Kostas
Boukos, Nikos
Tagmatarchis, Nikos
Vougioukalakis, Georgios C.
author_facet Tonis, Efstathios
Frousiou, Efrosyni
Heliopoulos, Nikolaos S.
Kagkoura, Antonia
Stangel, Christina
Siamidis, Dionysios
Galeou, Angeliki
Prombona, Anastasia
Stamatakis, Kostas
Boukos, Nikos
Tagmatarchis, Nikos
Vougioukalakis, Georgios C.
author_sort Tonis, Efstathios
collection PubMed
description [Image: see text] The present work focuses on the surface coating of VAR technical fibers, consisting of 64% viscose (cellulose), 24% Kevlar, 10% other types of polyamides, and 2% antistatic polymers. Kevlar is an aramid material exhibiting excellent mechanical properties, while cellulose is a natural linear polymer composed of repeating β-d-glucose units, having several applications in the materials industry. Herein, we synthesized novel, tailor-designed organic molecules possessing functional groups able to anchor on VAR fabrics and cellulose materials, thus altering their properties on demand. To this end, we utilized methyl-α-d-glucopyranose as a model compound, both to optimize the reaction conditions, before applying them to the material and to understand the chemical behavior of the material at the molecular level. The efficient coating of the VAR fabric with the tailor-made compounds was then implemented. Thorough characterization studies using Raman and IR spectroscopies as well as SEM imaging and thermogravimetric analysis were also carried out. The wettability and water repellency and antibacterial properties of the modified VAR fabrics were also investigated in detail. To the best of our knowledge, such an approach has not been previously explored, among other factors regarding the understanding of the anchoring mechanism at the molecular level. The proposed modification protocol holds the potential to improve the properties of various cellulose-based materials beyond VAR fabrics.
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spelling pubmed-106881172023-12-01 VAR Fabric Modification: Inducing Antibacterial Properties, Altering Wettability/Water Repellence, and Understanding Reactivity at the Molecular Level Tonis, Efstathios Frousiou, Efrosyni Heliopoulos, Nikolaos S. Kagkoura, Antonia Stangel, Christina Siamidis, Dionysios Galeou, Angeliki Prombona, Anastasia Stamatakis, Kostas Boukos, Nikos Tagmatarchis, Nikos Vougioukalakis, Georgios C. ACS Omega [Image: see text] The present work focuses on the surface coating of VAR technical fibers, consisting of 64% viscose (cellulose), 24% Kevlar, 10% other types of polyamides, and 2% antistatic polymers. Kevlar is an aramid material exhibiting excellent mechanical properties, while cellulose is a natural linear polymer composed of repeating β-d-glucose units, having several applications in the materials industry. Herein, we synthesized novel, tailor-designed organic molecules possessing functional groups able to anchor on VAR fabrics and cellulose materials, thus altering their properties on demand. To this end, we utilized methyl-α-d-glucopyranose as a model compound, both to optimize the reaction conditions, before applying them to the material and to understand the chemical behavior of the material at the molecular level. The efficient coating of the VAR fabric with the tailor-made compounds was then implemented. Thorough characterization studies using Raman and IR spectroscopies as well as SEM imaging and thermogravimetric analysis were also carried out. The wettability and water repellency and antibacterial properties of the modified VAR fabrics were also investigated in detail. To the best of our knowledge, such an approach has not been previously explored, among other factors regarding the understanding of the anchoring mechanism at the molecular level. The proposed modification protocol holds the potential to improve the properties of various cellulose-based materials beyond VAR fabrics. American Chemical Society 2023-11-14 /pmc/articles/PMC10688117/ /pubmed/38046315 http://dx.doi.org/10.1021/acsomega.3c05552 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Tonis, Efstathios
Frousiou, Efrosyni
Heliopoulos, Nikolaos S.
Kagkoura, Antonia
Stangel, Christina
Siamidis, Dionysios
Galeou, Angeliki
Prombona, Anastasia
Stamatakis, Kostas
Boukos, Nikos
Tagmatarchis, Nikos
Vougioukalakis, Georgios C.
VAR Fabric Modification: Inducing Antibacterial Properties, Altering Wettability/Water Repellence, and Understanding Reactivity at the Molecular Level
title VAR Fabric Modification: Inducing Antibacterial Properties, Altering Wettability/Water Repellence, and Understanding Reactivity at the Molecular Level
title_full VAR Fabric Modification: Inducing Antibacterial Properties, Altering Wettability/Water Repellence, and Understanding Reactivity at the Molecular Level
title_fullStr VAR Fabric Modification: Inducing Antibacterial Properties, Altering Wettability/Water Repellence, and Understanding Reactivity at the Molecular Level
title_full_unstemmed VAR Fabric Modification: Inducing Antibacterial Properties, Altering Wettability/Water Repellence, and Understanding Reactivity at the Molecular Level
title_short VAR Fabric Modification: Inducing Antibacterial Properties, Altering Wettability/Water Repellence, and Understanding Reactivity at the Molecular Level
title_sort var fabric modification: inducing antibacterial properties, altering wettability/water repellence, and understanding reactivity at the molecular level
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10688117/
https://www.ncbi.nlm.nih.gov/pubmed/38046315
http://dx.doi.org/10.1021/acsomega.3c05552
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