Fabrication and characterization of PVA/NNSA/GLA/nano-silica proton conducting composite membranes for DMFC applications

Blends of PVA and 2-nitroso-1-naphtol-4-sulfonic acid (NNSA) ranging from 10 to 40 wt% were crosslinked in the presence of glutaraldehyde (GLA) to produce hybrid membranes. The structure and morphology of the hybrid membranes were studied by XRD, FE-SEM, EDX, and elemental mapping experiments. The m...

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Main Authors: Sajede Shabanpanah, Abdollah Omrani, Moslem Mansour Lakouraj
Format: Article
Language:English
Published: Taylor & Francis Group 2019-01-01
Series:Designed Monomers and Polymers
Subjects:
Online Access:http://dx.doi.org/10.1080/15685551.2019.1626323
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spelling doaj-3d87a1a9cb1949329b4f71ef1cfa2aa02020-11-25T01:30:05ZengTaylor & Francis GroupDesigned Monomers and Polymers1385-772X1568-55512019-01-0122113013910.1080/15685551.2019.16263231626323Fabrication and characterization of PVA/NNSA/GLA/nano-silica proton conducting composite membranes for DMFC applicationsSajede Shabanpanah0Abdollah Omrani1Moslem Mansour Lakouraj2University of MazandaranUniversity of MazandaranUniversity of MazandaranBlends of PVA and 2-nitroso-1-naphtol-4-sulfonic acid (NNSA) ranging from 10 to 40 wt% were crosslinked in the presence of glutaraldehyde (GLA) to produce hybrid membranes. The structure and morphology of the hybrid membranes were studied by XRD, FE-SEM, EDX, and elemental mapping experiments. The mechanical performance and thermal stability of the membranes were also examined by dynamic mechanical analysis (DMA) and thermogravimetry analysis (TGA), respectively. Increasing the concentration of NNSA resulted in the improvement of mechanical and thermal performances of the membrane. The addition of NNSA and SiO2 to the solution of PVA makes the resultant hybrid membrane more hydrophilic, and therefore, the proton conductivity, water uptake and ion exchange capacity (IEC) improved. The highest proton conductivity value (0.18 S cm−1 at 30 °C) was found for the PVA/GLA/NNSA (40 wt%)/SiO2 (5 wt%) composite membrane. It was also demonstrated that the methanol permeability values decreased with increasing NNSA content.http://dx.doi.org/10.1080/15685551.2019.1626323hybrid membranepoly (vinyl alcohol)proton conductivitymethanol permeability
collection DOAJ
language English
format Article
sources DOAJ
author Sajede Shabanpanah
Abdollah Omrani
Moslem Mansour Lakouraj
spellingShingle Sajede Shabanpanah
Abdollah Omrani
Moslem Mansour Lakouraj
Fabrication and characterization of PVA/NNSA/GLA/nano-silica proton conducting composite membranes for DMFC applications
Designed Monomers and Polymers
hybrid membrane
poly (vinyl alcohol)
proton conductivity
methanol permeability
author_facet Sajede Shabanpanah
Abdollah Omrani
Moslem Mansour Lakouraj
author_sort Sajede Shabanpanah
title Fabrication and characterization of PVA/NNSA/GLA/nano-silica proton conducting composite membranes for DMFC applications
title_short Fabrication and characterization of PVA/NNSA/GLA/nano-silica proton conducting composite membranes for DMFC applications
title_full Fabrication and characterization of PVA/NNSA/GLA/nano-silica proton conducting composite membranes for DMFC applications
title_fullStr Fabrication and characterization of PVA/NNSA/GLA/nano-silica proton conducting composite membranes for DMFC applications
title_full_unstemmed Fabrication and characterization of PVA/NNSA/GLA/nano-silica proton conducting composite membranes for DMFC applications
title_sort fabrication and characterization of pva/nnsa/gla/nano-silica proton conducting composite membranes for dmfc applications
publisher Taylor & Francis Group
series Designed Monomers and Polymers
issn 1385-772X
1568-5551
publishDate 2019-01-01
description Blends of PVA and 2-nitroso-1-naphtol-4-sulfonic acid (NNSA) ranging from 10 to 40 wt% were crosslinked in the presence of glutaraldehyde (GLA) to produce hybrid membranes. The structure and morphology of the hybrid membranes were studied by XRD, FE-SEM, EDX, and elemental mapping experiments. The mechanical performance and thermal stability of the membranes were also examined by dynamic mechanical analysis (DMA) and thermogravimetry analysis (TGA), respectively. Increasing the concentration of NNSA resulted in the improvement of mechanical and thermal performances of the membrane. The addition of NNSA and SiO2 to the solution of PVA makes the resultant hybrid membrane more hydrophilic, and therefore, the proton conductivity, water uptake and ion exchange capacity (IEC) improved. The highest proton conductivity value (0.18 S cm−1 at 30 °C) was found for the PVA/GLA/NNSA (40 wt%)/SiO2 (5 wt%) composite membrane. It was also demonstrated that the methanol permeability values decreased with increasing NNSA content.
topic hybrid membrane
poly (vinyl alcohol)
proton conductivity
methanol permeability
url http://dx.doi.org/10.1080/15685551.2019.1626323
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AT abdollahomrani fabricationandcharacterizationofpvannsaglananosilicaprotonconductingcompositemembranesfordmfcapplications
AT moslemmansourlakouraj fabricationandcharacterizationofpvannsaglananosilicaprotonconductingcompositemembranesfordmfcapplications
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