Cargando…

Unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of Fourier and real space studies

We recently presented the elaboration and functional properties of a new generation of hybrid membranes for PEMFC applications showing promising performances and durability. The strategy was to form, inside a commercial sPEEK membrane, via in situ sol–gel (SG) synthesis, a reactive SG phase able to...

Descripción completa

Detalles Bibliográficos
Autores principales: Huynh, Natacha, Cosas Fernandes, João Paulo, Mareau, Vincent H., Gonon, Laurent, Pouget, Stéphanie, Jouneau, Pierre-Henri, Porcar, Lionel, Mendil-Jakani, Hakima
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418181/
https://www.ncbi.nlm.nih.gov/pubmed/36134147
http://dx.doi.org/10.1039/d1na00005e
_version_ 1784776891087978496
author Huynh, Natacha
Cosas Fernandes, João Paulo
Mareau, Vincent H.
Gonon, Laurent
Pouget, Stéphanie
Jouneau, Pierre-Henri
Porcar, Lionel
Mendil-Jakani, Hakima
author_facet Huynh, Natacha
Cosas Fernandes, João Paulo
Mareau, Vincent H.
Gonon, Laurent
Pouget, Stéphanie
Jouneau, Pierre-Henri
Porcar, Lionel
Mendil-Jakani, Hakima
author_sort Huynh, Natacha
collection PubMed
description We recently presented the elaboration and functional properties of a new generation of hybrid membranes for PEMFC applications showing promising performances and durability. The strategy was to form, inside a commercial sPEEK membrane, via in situ sol–gel (SG) synthesis, a reactive SG phase able to reduce oxidative species generated during FC operation. In order to understand structure-properties interplay, we use a combination of direct space (AFM/3D FIB-SEM) and reciprocal space (SANS/WAXS) techniques to cover dimensional scales ranging from a hundred to few nanometers. AFM modulus images showed the SG phase distributed into spherical domains whose size increases with the SG uptake (ca. 100–200 nm range). Using contrast variation SANS, we observed that the sPEEK nanostructure is mostly unaffected by the insertion of the SG phase which presents a fractal-like multiscale structure. Additionally, the size of both the particles (aggregates/primary) is much too large to be sequestered in the ionic pathways of sPEEK. These findings indicate that the SG-NPs mainly grow within the amorphous interbundle domains. Noticeable rightward shift and widening of the ionomer peak are observed with the SG content, suggesting ion channel compression and greater heterogeneity of the ionic domain size. The SG phase develops in the interbundle regions with a limited impact on the water uptake but leading to a discontinuity of ionic conductivity. This Fourier and real spaces study clarifies the structure of the hybrid membranes and brings into the question the ideal distribution/localization of the SG phase to optimize the membrane's stabilization.
format Online
Article
Text
id pubmed-9418181
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher RSC
record_format MEDLINE/PubMed
spelling pubmed-94181812022-09-20 Unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of Fourier and real space studies Huynh, Natacha Cosas Fernandes, João Paulo Mareau, Vincent H. Gonon, Laurent Pouget, Stéphanie Jouneau, Pierre-Henri Porcar, Lionel Mendil-Jakani, Hakima Nanoscale Adv Chemistry We recently presented the elaboration and functional properties of a new generation of hybrid membranes for PEMFC applications showing promising performances and durability. The strategy was to form, inside a commercial sPEEK membrane, via in situ sol–gel (SG) synthesis, a reactive SG phase able to reduce oxidative species generated during FC operation. In order to understand structure-properties interplay, we use a combination of direct space (AFM/3D FIB-SEM) and reciprocal space (SANS/WAXS) techniques to cover dimensional scales ranging from a hundred to few nanometers. AFM modulus images showed the SG phase distributed into spherical domains whose size increases with the SG uptake (ca. 100–200 nm range). Using contrast variation SANS, we observed that the sPEEK nanostructure is mostly unaffected by the insertion of the SG phase which presents a fractal-like multiscale structure. Additionally, the size of both the particles (aggregates/primary) is much too large to be sequestered in the ionic pathways of sPEEK. These findings indicate that the SG-NPs mainly grow within the amorphous interbundle domains. Noticeable rightward shift and widening of the ionomer peak are observed with the SG content, suggesting ion channel compression and greater heterogeneity of the ionic domain size. The SG phase develops in the interbundle regions with a limited impact on the water uptake but leading to a discontinuity of ionic conductivity. This Fourier and real spaces study clarifies the structure of the hybrid membranes and brings into the question the ideal distribution/localization of the SG phase to optimize the membrane's stabilization. RSC 2021-03-23 /pmc/articles/PMC9418181/ /pubmed/36134147 http://dx.doi.org/10.1039/d1na00005e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Huynh, Natacha
Cosas Fernandes, João Paulo
Mareau, Vincent H.
Gonon, Laurent
Pouget, Stéphanie
Jouneau, Pierre-Henri
Porcar, Lionel
Mendil-Jakani, Hakima
Unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of Fourier and real space studies
title Unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of Fourier and real space studies
title_full Unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of Fourier and real space studies
title_fullStr Unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of Fourier and real space studies
title_full_unstemmed Unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of Fourier and real space studies
title_short Unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of Fourier and real space studies
title_sort unveiling the multiscale morphology of chemically stabilized proton exchange membranes for fuel cells by means of fourier and real space studies
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418181/
https://www.ncbi.nlm.nih.gov/pubmed/36134147
http://dx.doi.org/10.1039/d1na00005e
work_keys_str_mv AT huynhnatacha unveilingthemultiscalemorphologyofchemicallystabilizedprotonexchangemembranesforfuelcellsbymeansoffourierandrealspacestudies
AT cosasfernandesjoaopaulo unveilingthemultiscalemorphologyofchemicallystabilizedprotonexchangemembranesforfuelcellsbymeansoffourierandrealspacestudies
AT mareauvincenth unveilingthemultiscalemorphologyofchemicallystabilizedprotonexchangemembranesforfuelcellsbymeansoffourierandrealspacestudies
AT gononlaurent unveilingthemultiscalemorphologyofchemicallystabilizedprotonexchangemembranesforfuelcellsbymeansoffourierandrealspacestudies
AT pougetstephanie unveilingthemultiscalemorphologyofchemicallystabilizedprotonexchangemembranesforfuelcellsbymeansoffourierandrealspacestudies
AT jouneaupierrehenri unveilingthemultiscalemorphologyofchemicallystabilizedprotonexchangemembranesforfuelcellsbymeansoffourierandrealspacestudies
AT porcarlionel unveilingthemultiscalemorphologyofchemicallystabilizedprotonexchangemembranesforfuelcellsbymeansoffourierandrealspacestudies
AT mendiljakanihakima unveilingthemultiscalemorphologyofchemicallystabilizedprotonexchangemembranesforfuelcellsbymeansoffourierandrealspacestudies