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Phosphorylated Poly(vinyl alcohol) Electrospun Mats for Protective Equipment Applications

The development of intelligent materials for protective equipment applications is still growing, with enormous potential to improve the safety of personnel functioning in specialized professions, such as firefighters. The design and production of such materials by the chemical modification of biodeg...

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Autores principales: Serbezeanu, Diana, Vlad-Bubulac, Tăchiță, Onofrei, Mihaela Dorina, Doroftei, Florica, Hamciuc, Corneliu, Ipate, Alina-Mirela, Anisiei, Alexandru, Lisa, Gabriela, Anghel, Ion, Şofran, Ioana-Emilia, Popescu, Vasilica
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9370101/
https://www.ncbi.nlm.nih.gov/pubmed/35957115
http://dx.doi.org/10.3390/nano12152685
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author Serbezeanu, Diana
Vlad-Bubulac, Tăchiță
Onofrei, Mihaela Dorina
Doroftei, Florica
Hamciuc, Corneliu
Ipate, Alina-Mirela
Anisiei, Alexandru
Lisa, Gabriela
Anghel, Ion
Şofran, Ioana-Emilia
Popescu, Vasilica
author_facet Serbezeanu, Diana
Vlad-Bubulac, Tăchiță
Onofrei, Mihaela Dorina
Doroftei, Florica
Hamciuc, Corneliu
Ipate, Alina-Mirela
Anisiei, Alexandru
Lisa, Gabriela
Anghel, Ion
Şofran, Ioana-Emilia
Popescu, Vasilica
author_sort Serbezeanu, Diana
collection PubMed
description The development of intelligent materials for protective equipment applications is still growing, with enormous potential to improve the safety of personnel functioning in specialized professions, such as firefighters. The design and production of such materials by the chemical modification of biodegradable semisynthetic polymers, accompanied by modern manufacturing techniques such as electrospinning, which may increase specific properties of the targeted material, continue to attract the interest of researchers. Phosphorus-modified poly(vinyl alcohol)s have been, thus, synthesized and utilized to prepare environmentally friendly electrospun mats. Poly(vinyl alcohol)s of three different molecular weights and degrees of hydrolysis were phosphorylated by polycondensation reaction in solution in the presence of phenyl dichlorophosphate in order to enhance their flame resistance and thermal stability. The thermal behavior and the flame resistance of the resulting phosphorus-modified poly(vinyl alcohol) products were investigated by thermogravimetric analysis and by cone calorimetry at a micro scale. Based on the as-synthesized phosphorus-modified poly(vinyl alcohol)s, electrospun mats were successfully fabricated by the electrospinning process. Rheology studies were performed to establish the optimal conditions of the electrospinning process, and scanning electron microscopy investigations were undertaken to observe the morphology of the phosphorus-modified poly(vinyl alcohol) electrospun mats.
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spelling pubmed-93701012022-08-12 Phosphorylated Poly(vinyl alcohol) Electrospun Mats for Protective Equipment Applications Serbezeanu, Diana Vlad-Bubulac, Tăchiță Onofrei, Mihaela Dorina Doroftei, Florica Hamciuc, Corneliu Ipate, Alina-Mirela Anisiei, Alexandru Lisa, Gabriela Anghel, Ion Şofran, Ioana-Emilia Popescu, Vasilica Nanomaterials (Basel) Article The development of intelligent materials for protective equipment applications is still growing, with enormous potential to improve the safety of personnel functioning in specialized professions, such as firefighters. The design and production of such materials by the chemical modification of biodegradable semisynthetic polymers, accompanied by modern manufacturing techniques such as electrospinning, which may increase specific properties of the targeted material, continue to attract the interest of researchers. Phosphorus-modified poly(vinyl alcohol)s have been, thus, synthesized and utilized to prepare environmentally friendly electrospun mats. Poly(vinyl alcohol)s of three different molecular weights and degrees of hydrolysis were phosphorylated by polycondensation reaction in solution in the presence of phenyl dichlorophosphate in order to enhance their flame resistance and thermal stability. The thermal behavior and the flame resistance of the resulting phosphorus-modified poly(vinyl alcohol) products were investigated by thermogravimetric analysis and by cone calorimetry at a micro scale. Based on the as-synthesized phosphorus-modified poly(vinyl alcohol)s, electrospun mats were successfully fabricated by the electrospinning process. Rheology studies were performed to establish the optimal conditions of the electrospinning process, and scanning electron microscopy investigations were undertaken to observe the morphology of the phosphorus-modified poly(vinyl alcohol) electrospun mats. MDPI 2022-08-04 /pmc/articles/PMC9370101/ /pubmed/35957115 http://dx.doi.org/10.3390/nano12152685 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
Serbezeanu, Diana
Vlad-Bubulac, Tăchiță
Onofrei, Mihaela Dorina
Doroftei, Florica
Hamciuc, Corneliu
Ipate, Alina-Mirela
Anisiei, Alexandru
Lisa, Gabriela
Anghel, Ion
Şofran, Ioana-Emilia
Popescu, Vasilica
Phosphorylated Poly(vinyl alcohol) Electrospun Mats for Protective Equipment Applications
title Phosphorylated Poly(vinyl alcohol) Electrospun Mats for Protective Equipment Applications
title_full Phosphorylated Poly(vinyl alcohol) Electrospun Mats for Protective Equipment Applications
title_fullStr Phosphorylated Poly(vinyl alcohol) Electrospun Mats for Protective Equipment Applications
title_full_unstemmed Phosphorylated Poly(vinyl alcohol) Electrospun Mats for Protective Equipment Applications
title_short Phosphorylated Poly(vinyl alcohol) Electrospun Mats for Protective Equipment Applications
title_sort phosphorylated poly(vinyl alcohol) electrospun mats for protective equipment applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9370101/
https://www.ncbi.nlm.nih.gov/pubmed/35957115
http://dx.doi.org/10.3390/nano12152685
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