Anion conducting methylated aliphatic PBI and its calculated properties

Authors
Cho, HyeongraeHenkensmeier, DirkBrela, MateuszMichalak, ArturJang, Jong HyunLee, Kwan-Young
Issue Date
2017-02
Publisher
John Wiley & Sons Inc.
Citation
Journal of Polymer Science, Part B: Polymer Physics, v.55, no.3, pp.256 - 265
Abstract
A methylated polybenzimidazole with an aliphatic chain in the backbone (Me-PBI-C10) was synthesized and formed into membranes. Literature suggests that alkyl chains on C2 of imidazolium ions increase their alkaline stability. While this may be true for model compounds or ions attached as a side chain, both our DFT calculations and experimental results show that Me-PBI-C10 does not withstand alkaline conditions. To increase the alkaline stability, blend membranes with PBI-OO were fabricated. A blend membrane with 50% PBI-OO showed a chloride conductivity of up to 6 mS/cm, indicating that these membranes could find use in non-alkaline applications like vanadium redox flow batteries (VRFB). The high mechanical stability (tensile strength: 70.25 +/- 14.85 MPa, Young modulus: 1.65 +/- 0.16 GPa) would be an advantage over currently used Nafion membranes. Finally, three different models were successfully applied to qualitatively predict the water uptake of Me-PBI-C10 exchanged with different anions. The results match with experimental data. (c) 2016 Wiley Periodicals, Inc. J. Polym. Sci., Part B: Polym. Phys. 2017, 55, 256-265
Keywords
FOCK-SLATER CALCULATIONS; TRANSITION-STATE METHOD; EXCHANGE MEMBRANE; REVERSE ELECTRODIALYSIS; IMIDAZOLIUM CATIONS; POWER-DENSITY; DEGRADATION; ENERGY; APPROXIMATION; HYDROXIDES; aliphatic polybenzimidazole; cation-anion interactions; computer modeling; DFT calculations; ionomers; membranes; polymer solvation; water uptake
ISSN
0887-6266
URI
https://pubs.kist.re.kr/handle/201004/123119
DOI
10.1002/polb.24267
Appears in Collections:
KIST Article > 2017
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