4.6 Article

Robust and durable poly(aryl-co-aryl piperidinium) reinforced membranes for alkaline membrane fuel cells

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 10, Issue 12, Pages 6587-6595

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2ta00196a

Keywords

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Funding

  1. National Research Foundation of Korea (NRF) - Ministry of Science and ICT [NRF-2018M1A2A2061979]
  2. Korea Evaluation Institute of Industrial Technology (KEIT) - Ministry of Trade, Industry and Energy, South Korea [20010955]
  3. China Scholarship Council (CSC) [202008320403, 201906310144]
  4. Korea Evaluation Institute of Industrial Technology (KEIT) [20010955] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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High-performance poly(aryl-co-aryl piperidinium) reinforced membranes with excellent mechanical and chemical durability, gas tightness, and dimensional stability were reported for alkaline energy device applications.
Robust and durable anion exchange membranes are crucial for cost-effective anion exchange membrane fuel cells (AEMFCs). Herein, we report high-performance poly(aryl-co-aryl piperidinium) (c-PAP) reinforced membranes with >95% visible light transmittance and a typical three-layer cross-sectional morphology for AEMFCs. Importantly, the reinforced composite membranes (RCMs) simultaneously possess ultrahigh tensile strength (TS, similar to 114 MPa) and elongation at break (EB, similar to 159%), which are improvements over the best-performing AEMs previously reported (mostly below 50 MPa of TS and 30% of EB). Additionally, the RCMs exhibit exceptional gas tightness (H-2 crossover current density <0.2 mA cm(-2) at 20% relative humidity (RH) and H-2 permeability <10 Barrer), dimensional stability, and mechanical durability during RH cycling and pressure differential tests at 80 degrees C. Moreover, the RCMs maintain excellent mechanical and chemical durability after AEMFC testing at a current density of 0.6 A cm(-2) at 70 degrees C for similar to 360 h. The present RCM is an excellent candidate for alkaline energy device applications.

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