Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Polyacrylonitrile‐based proton conducting membranes containing sulfonic acid and tetrazole moieties

View through CrossRef
ABSTRACTProton conducting membranes based on polymers containing sulfonic acid and tetrazole moieties were developed. Successful syntheses of poly(acrylonitrile‐co‐styrene sulfonic acid) (PAN‐co‐PSSA), poly(acrylonitrile‐co‐5‐vinyl tetrazole) (PAN‐co‐PVTz), and poly(acrylonitrile‐co‐5‐vinyl tetrazole‐co‐styrene sulfonic acid) (PAN‐co‐PVTz‐co‐PSSA) were confirmed by 1H‐nuclear magnetic resonance spectroscopy, elemental analysis, and Fourier transform infrared spectroscopy. Two approaches were performed to study the effects of molar ratio of sulfonic acid to tetrazole and tetrazole content on membrane properties. In the first approach, PAN‐co‐PSSA was blended with PAN‐co‐PVTz at three molar ratios. The second approach focused on PAN‐co‐PVTz‐co‐PSSA membranes with various tetrazole contents. PAN‐co‐PSSA membrane was also prepared. All solution‐cast membranes were hydrolytically stable, except for PAN‐co‐PVTz‐co‐PSSA with 71% tetrazole. Surface morphologies of blend membranes were studied using scanning electron microscopy, and no phase separation was observed. Water uptake was shown to increase with increasing tetrazole. All membranes exhibited high thermal stability (up to 250 °C) and high storage moduli. Proton conductivity was found to depend significantly on relative humidity. The influences of sulfonic acid to tetrazole ratio and tetrazole content on proton conduction were observed and discussed. A maximum proton conductivity of 7.1 × 10−3 S/cm at 26 °C was obtained from PAN‐co‐PSSA membrane. In addition, all tested membranes showed relatively good oxidative stability after treatment in Fenton's reagent. © 2017 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2017, 134, 45411.
Title: Polyacrylonitrile‐based proton conducting membranes containing sulfonic acid and tetrazole moieties
Description:
ABSTRACTProton conducting membranes based on polymers containing sulfonic acid and tetrazole moieties were developed.
Successful syntheses of poly(acrylonitrile‐co‐styrene sulfonic acid) (PAN‐co‐PSSA), poly(acrylonitrile‐co‐5‐vinyl tetrazole) (PAN‐co‐PVTz), and poly(acrylonitrile‐co‐5‐vinyl tetrazole‐co‐styrene sulfonic acid) (PAN‐co‐PVTz‐co‐PSSA) were confirmed by 1H‐nuclear magnetic resonance spectroscopy, elemental analysis, and Fourier transform infrared spectroscopy.
Two approaches were performed to study the effects of molar ratio of sulfonic acid to tetrazole and tetrazole content on membrane properties.
In the first approach, PAN‐co‐PSSA was blended with PAN‐co‐PVTz at three molar ratios.
The second approach focused on PAN‐co‐PVTz‐co‐PSSA membranes with various tetrazole contents.
PAN‐co‐PSSA membrane was also prepared.
All solution‐cast membranes were hydrolytically stable, except for PAN‐co‐PVTz‐co‐PSSA with 71% tetrazole.
Surface morphologies of blend membranes were studied using scanning electron microscopy, and no phase separation was observed.
Water uptake was shown to increase with increasing tetrazole.
All membranes exhibited high thermal stability (up to 250 °C) and high storage moduli.
Proton conductivity was found to depend significantly on relative humidity.
The influences of sulfonic acid to tetrazole ratio and tetrazole content on proton conduction were observed and discussed.
A maximum proton conductivity of 7.
1 × 10−3 S/cm at 26 °C was obtained from PAN‐co‐PSSA membrane.
In addition, all tested membranes showed relatively good oxidative stability after treatment in Fenton's reagent.
© 2017 Wiley Periodicals, Inc.
J.
Appl.
Polym.
Sci.
2017, 134, 45411.

Related Results

Use of Organic Solvent Nanofiltration (OSN) membranes for Counter-Current Chromatography (CCC) solvent recovery
Use of Organic Solvent Nanofiltration (OSN) membranes for Counter-Current Chromatography (CCC) solvent recovery
Solvent resistant membranes are a relatively new technology which has the potential to expand the possible utilities of membranes for process industries. Little is known in terms o...
Computer simulation of an excess proton in aqueous systems
Computer simulation of an excess proton in aqueous systems
This thesis aims at studying the microscopic physical-chemical properties of an excess proton in aqueous systems. From bulk water environments to narrow hydrophobic channels constr...
British Food Journal Volume 46 Issue 11 1944
British Food Journal Volume 46 Issue 11 1944
1. From the information given to the Committee by members of the trade the following conclusions were drawn : (i) Four main types of product are sold under a name commonly includin...
Interaction between polyacrylonitrile and alkalis
Interaction between polyacrylonitrile and alkalis
AbstractInteractions between highly isotactic acrylonitrile homopolymers and alkalis in dimethyl sulfoxide solvent were examined. Coloration occurred as soon as polyacrylonitrile w...
Fuel Cells: Proton Exchange Membranes
Fuel Cells: Proton Exchange Membranes
Abstract Proton exchange membrane, also known as polymer electrolyte membrane, fuel cells (PEMFCs) offer the promise of efficient conversion of chemical ener...
Fuel Cells: Proton Exchange Membranes
Fuel Cells: Proton Exchange Membranes
Abstract Proton exchange membrane, also known as polymer electrolyte membrane, fuel cells (PEMFCs) offer the promise of efficient conversion of chemical ener...
Preparation and Characterisation of Proton Exchange Membranes Based on Crosslinked Polybenzimidazole and Phosphoric Acid
Preparation and Characterisation of Proton Exchange Membranes Based on Crosslinked Polybenzimidazole and Phosphoric Acid
AbstractCrosslinked polybenzimidazole (PBI) was synthesised via free radical polymerisation between N‐vinylimidazole and vinylbenzyl substituted PBI. The degree of crosslinking inc...

Back to Top