Polybenzimidazole block copolymers for fuel cell: Synthesis and studies of block length effects on nanophase separation, mechanical properties, and proton conductivity of PEM

dc.contributor.author Maity, Sudhangshu
dc.contributor.author Jana, Tushar
dc.date.accessioned 2022-03-27T08:57:40Z
dc.date.available 2022-03-27T08:57:40Z
dc.date.issued 2014-05-14
dc.description.abstract A series of meta-polybenzimidazole-block-para-polybenzimidazole (m-PBI-b-p-PBI), segmented block copolymers of PBI, were synthesized with various structural motifs and block lengths by condensing the diamine terminated meta-PBI (m-PBI-Am) and acid terminated para-PBI (p-PBI-Ac) oligomers. NMR studies and existence of two distinct glass transition temperatures (T g), obtained from dynamical mechanical analysis (DMA) results, unequivocally confirmed the formation of block copolymer structure through the current polymerization methodology. Appropriate and careful selection of oligomers chain length enabled us to tailor the block length of block copolymers and also to make varieties of structural motifs. Increasingly distinct T g peaks with higher block length of segmented block structure attributed the decrease in phase mixing between the meta-PBI and para-PBI blocks, which in turn resulted into nanophase segregated domains. The proton conductivities of proton exchange membrane (PEM) developed from phosphoric acid (PA) doped block copolymer membranes were found to be increasing substantially with increasing block length of copolymers even though PA loading of these membranes did not alter appreciably with varying block length. For example when molecular weight (Mn) of blocks were increased from 1000 to 5500 then the proton conductivities at 160 °C of resulting copolymers increased from 0.05 to 0.11 S/cm. Higher block length induced nanophase separation between the blocks by creating less morphological barrier within the block which facilitated the movement of the proton in the block and hence resulting higher proton conductivity of the PEM. The structural varieties also influenced the phase separation and proton conductivity. In comparison to meta-para random copolymers reported earlier, the current meta-para segmented block copolymers were found to be more suitable for PBI-based PEM. © 2014 American Chemical Society.
dc.identifier.citation ACS Applied Materials and Interfaces. v.6(9)
dc.identifier.issn 19448244
dc.identifier.uri 10.1021/am500668c
dc.identifier.uri https://pubs.acs.org/doi/10.1021/am500668c
dc.identifier.uri https://dspace.uohyd.ac.in/handle/1/12166
dc.subject block copolymer
dc.subject fuel cell
dc.subject polybenzimidazole
dc.subject proton conductivity
dc.subject proton exchange membrane
dc.title Polybenzimidazole block copolymers for fuel cell: Synthesis and studies of block length effects on nanophase separation, mechanical properties, and proton conductivity of PEM
dc.type Journal. Conference Paper
dspace.entity.type
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