Cargando…

Structure-Property Relationship on the Example of Gas Separation Characteristics of Poly(Arylene Ether Ketone)s and Poly(Diphenylene Phtalide)

Three poly(arylene ether ketone)s (PAEKs) with propylidene (C1, C2) and phtalide (C3) fragments, and one phtalide-containing polyarylene (C4), were synthesized. Their chemical structures were confirmed via (1)H NMR, (13)C NMR and (19)F NMR spectroscopy. The polymers have shown a high glass transitio...

Descripción completa

Detalles Bibliográficos
Autores principales: Alentiev, Alexandre, Chirkov, Sergey, Nikiforov, Roman, Buzin, Mikhail, Miloserdov, Oleg, Ryzhikh, Victoria, Belov, Nikolay, Shaposhnikova, Vera, Salazkin, Sergey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8465416/
https://www.ncbi.nlm.nih.gov/pubmed/34564494
http://dx.doi.org/10.3390/membranes11090677
_version_ 1784572867843719168
author Alentiev, Alexandre
Chirkov, Sergey
Nikiforov, Roman
Buzin, Mikhail
Miloserdov, Oleg
Ryzhikh, Victoria
Belov, Nikolay
Shaposhnikova, Vera
Salazkin, Sergey
author_facet Alentiev, Alexandre
Chirkov, Sergey
Nikiforov, Roman
Buzin, Mikhail
Miloserdov, Oleg
Ryzhikh, Victoria
Belov, Nikolay
Shaposhnikova, Vera
Salazkin, Sergey
author_sort Alentiev, Alexandre
collection PubMed
description Three poly(arylene ether ketone)s (PAEKs) with propylidene (C1, C2) and phtalide (C3) fragments, and one phtalide-containing polyarylene (C4), were synthesized. Their chemical structures were confirmed via (1)H NMR, (13)C NMR and (19)F NMR spectroscopy. The polymers have shown a high glass transition temperature (>155 °C), excellent film-forming properties, and a high free volume for this polymer type. The influence of various functional groups in the structure of PAEKs was evaluated. Expectedly, due to higher free volume the introduction of hexafluoropropylidene group to PAEK resulted in higher increase of gas permeability in comparison with propylidene group. The substitution of the fluorine-containing group on a rigid phtalide moiety (C3) significantly increases glass transition temperature of the polymer while gas permeation slightly decreases. Finally, the removal of two ether groups from PAEK structure (C4) leads to a rigid polymer chain that is characterized by highest free volume, gas permeability and diffusion coefficients among the PAEKs under investigation. Methods of modified atomic (MAC) and bond (BC) contributions were applied to estimate gas permeation and diffusion. Both techniques showed reasonable predicted parameters for three polymers while a significant underestimation of gas transport parameters was observed for C4. Gas solubility coefficients for PAEKs were forecasted by “Short polymer chain surface based pre-diction” (SPCSBP) method. Results for all three prediction methods were compared with the ex-perimental data obtained in this work. Predicted parameters were in good agreement with ex-perimental data for phtalide-containing polymers (C3 and C4) while for propylidene-containing poly(arylene ether ketone)s they were overestimated due to a possible influence of propylidene fragment on indices of oligomeric chains. MAC and BC methods demonstrated better prediction power than SPCSBP method.
format Online
Article
Text
id pubmed-8465416
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-84654162021-09-27 Structure-Property Relationship on the Example of Gas Separation Characteristics of Poly(Arylene Ether Ketone)s and Poly(Diphenylene Phtalide) Alentiev, Alexandre Chirkov, Sergey Nikiforov, Roman Buzin, Mikhail Miloserdov, Oleg Ryzhikh, Victoria Belov, Nikolay Shaposhnikova, Vera Salazkin, Sergey Membranes (Basel) Article Three poly(arylene ether ketone)s (PAEKs) with propylidene (C1, C2) and phtalide (C3) fragments, and one phtalide-containing polyarylene (C4), were synthesized. Their chemical structures were confirmed via (1)H NMR, (13)C NMR and (19)F NMR spectroscopy. The polymers have shown a high glass transition temperature (>155 °C), excellent film-forming properties, and a high free volume for this polymer type. The influence of various functional groups in the structure of PAEKs was evaluated. Expectedly, due to higher free volume the introduction of hexafluoropropylidene group to PAEK resulted in higher increase of gas permeability in comparison with propylidene group. The substitution of the fluorine-containing group on a rigid phtalide moiety (C3) significantly increases glass transition temperature of the polymer while gas permeation slightly decreases. Finally, the removal of two ether groups from PAEK structure (C4) leads to a rigid polymer chain that is characterized by highest free volume, gas permeability and diffusion coefficients among the PAEKs under investigation. Methods of modified atomic (MAC) and bond (BC) contributions were applied to estimate gas permeation and diffusion. Both techniques showed reasonable predicted parameters for three polymers while a significant underestimation of gas transport parameters was observed for C4. Gas solubility coefficients for PAEKs were forecasted by “Short polymer chain surface based pre-diction” (SPCSBP) method. Results for all three prediction methods were compared with the ex-perimental data obtained in this work. Predicted parameters were in good agreement with ex-perimental data for phtalide-containing polymers (C3 and C4) while for propylidene-containing poly(arylene ether ketone)s they were overestimated due to a possible influence of propylidene fragment on indices of oligomeric chains. MAC and BC methods demonstrated better prediction power than SPCSBP method. MDPI 2021-08-31 /pmc/articles/PMC8465416/ /pubmed/34564494 http://dx.doi.org/10.3390/membranes11090677 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
Alentiev, Alexandre
Chirkov, Sergey
Nikiforov, Roman
Buzin, Mikhail
Miloserdov, Oleg
Ryzhikh, Victoria
Belov, Nikolay
Shaposhnikova, Vera
Salazkin, Sergey
Structure-Property Relationship on the Example of Gas Separation Characteristics of Poly(Arylene Ether Ketone)s and Poly(Diphenylene Phtalide)
title Structure-Property Relationship on the Example of Gas Separation Characteristics of Poly(Arylene Ether Ketone)s and Poly(Diphenylene Phtalide)
title_full Structure-Property Relationship on the Example of Gas Separation Characteristics of Poly(Arylene Ether Ketone)s and Poly(Diphenylene Phtalide)
title_fullStr Structure-Property Relationship on the Example of Gas Separation Characteristics of Poly(Arylene Ether Ketone)s and Poly(Diphenylene Phtalide)
title_full_unstemmed Structure-Property Relationship on the Example of Gas Separation Characteristics of Poly(Arylene Ether Ketone)s and Poly(Diphenylene Phtalide)
title_short Structure-Property Relationship on the Example of Gas Separation Characteristics of Poly(Arylene Ether Ketone)s and Poly(Diphenylene Phtalide)
title_sort structure-property relationship on the example of gas separation characteristics of poly(arylene ether ketone)s and poly(diphenylene phtalide)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8465416/
https://www.ncbi.nlm.nih.gov/pubmed/34564494
http://dx.doi.org/10.3390/membranes11090677
work_keys_str_mv AT alentievalexandre structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide
AT chirkovsergey structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide
AT nikiforovroman structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide
AT buzinmikhail structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide
AT miloserdovoleg structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide
AT ryzhikhvictoria structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide
AT belovnikolay structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide
AT shaposhnikovavera structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide
AT salazkinsergey structurepropertyrelationshipontheexampleofgasseparationcharacteristicsofpolyaryleneetherketonesandpolydiphenylenephtalide