4.7 Article

Phase Inversion-Induced Porous Polybenzimidazole Fuel Cell Membranes: An Efficient Architecture for High-Temperature Water-Free Proton Transport

Journal

POLYMERS
Volume 12, Issue 7, Pages -

Publisher

MDPI
DOI: 10.3390/polym12071604

Keywords

polybenzimidazole; porous membrane; thermal cross-linking; phosphoric acid; proton transport; high-temperature polymer electrolyte membrane fuel cells

Funding

  1. Basic Science Research Program through the National Research Foundation (NRF) - Ministry of Education [NRF-2020R1A2C1009854]
  2. Technology Development Program to Solve Climate Changes of The National Research Foundation (NRF) - Ministry of Science, ICT & Future Planning [NRF-2015M1A2A2056833]

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To cope with the demand for cleaner alternative energy, polymer electrolyte membrane fuel cells (PEMFCs) have received significant research attention owing to their high-power density, high fuel efficiency, and low polluting by-product. However, the water requirement of these cells has necessitated research on systems that do not require water and/or use other mediums with higher boiling points. In this work, a highly porousmeta-polybenzimidazole (m-PBI) membrane was fabricated through the non-solvent induced phase inversion technique and thermal cross-linking for high-temperature PEMFC (HT-PEMFC) applications. Standard non-thermally treated porous membranes are susceptible to phosphoric acid (PA) even at low concentrations and are unsuitable as polymer electrolyte membranes (PEMs). With the porous structure ofm-PBI membranes, higher PA uptake and minimal swelling, which is controlled via cross-linking, was achieved. In addition, the membranes exhibited partial asymmetrical morphology and are directly applicable to fuel cell systems without any further modifications. Membranes with insufficient cross-linking resulted in an unstable performance in HT-PEMFC environments. By optimizing thermal treatment, a high-performance membrane with limited swelling and improved proton conductivity was achieved. Finally, them-PBI membrane exhibited enhanced acid retention, proton conductivity, and fuel cell performance.

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