4.5 Article

3D Network Structural Poly (Aryl Ether Ketone)-Polybenzimidazole Polymer for High-Temperature Proton Exchange Membrane Fuel Cells

Journal

ADVANCES IN POLYMER TECHNOLOGY
Volume 2020, Issue -, Pages -

Publisher

WILEY-HINDAWI
DOI: 10.1155/2020/4563860

Keywords

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Funding

  1. National Key Research and Development Program [2018YFA0702002]
  2. Link Project of the National Natural Science Foundation of China [U1601211]
  3. Link Project of the National Natural Science Foundation of Guangdong Province [U1601211]
  4. National Key Research and Development Program (Japan-China Joint Research Program) [2017YFE9127900]
  5. National Natural Science Foundation of China [51573215, 21506260, 21706294, 21376276]
  6. Natural Science Foundation of Guangdong Province [2016A030313354]
  7. Guangdong Science and Technology Department [2016A050503001, 2016B010114004, 2017B090901003]
  8. Guangzhou Science and Technology Plan Project [201804020025, 201707010424]
  9. Fundamental Research Funds for the Central Universities [17lgjc37, 18lgpy32, 19lgpy07]

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Poor mechanical property is a critical problem for phosphoric acid-doped high-temperature proton exchange membranes (HT-PEMs). In order to address this concern, in this work, a 3D network structural poly (aryl ether ketone)-polybenzimidazole (PAEK-cr-PBI) polymer electrolyte membrane was successfully synthesized through crosslinking reaction between poly (aryl ether ketone) with the pendant carboxyl group (PAEK-COOH) and amino-terminated polybenzimidazole (PBI-4NH(2)). PAEK-COOH with a poly (aryl ether ketone) backbone endows superior thermal, mechanical, and chemical stability, while PBI-4NH(2)serves as both a proton conductor and a crosslinker with basic imidazole groups to absorb phosphoric acid. Moreover, the composite membrane of PAEK-cr-PBI blended with linear PBI (PAEK-cr-PBI@PBI) was also prepared. Both membranes with a proper phosphoric acid (PA) uptake exhibit an excellent proton conductivity of around 50 mS cm(-1)at 170 degrees C, which is comparable to that of the well-documented PA-doped PBI membrane. Furthermore, the PA-doped PAEK-cr-PBI membrane shows superior mechanical properties of 17 MPa compared with common PA-doped PBI. Based upon these encouraging results, the as-synthesized PAEK-cr-PBI gives a highly practical promise for its application in high-temperature proton exchange membrane fuel cells (HT-PEMFCs).

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