4.8 Article

Highly Conductive and Mechanically Stable Imidazole-Rich Cross-Linked Networks for High-Temperature Proton Exchange Membrane Fuel Cells

Journal

CHEMISTRY OF MATERIALS
Volume 32, Issue 3, Pages 1182-1191

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.9b04321

Keywords

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Funding

  1. National Natural Science Foundation, China [51873076, 21404013]
  2. Science and Technology Development Plan of Jilin Province, China [20180201076GX, 20180201075GX]
  3. Industrial Technology Research and Development Funds of Jilin Province [2019C042-4]
  4. Open Research Fund of State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences [201826]

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Phosphoric acid-doped polybenzimidazole (PA-PBI) used in high-temperature proton exchange membranes (HT-PEMs) frequently suffers from a serious loss of mechanical strength because of the plasticizing effect of the dopant acid. Conventional cross-linking approaches generally enhance membrane stability. However, acid doping levels (ADLs) and consequently proton conductivity inevitably decrease. This is due to the formation of more compact molecular structures and a reduced amount of functional imidazole units, caused by their consumption in introducing the cross-linker. To resolve the common problems of current PA-PBI-based HT-PEMs, herein, a highly acidophilic imidazole-rich cross-linked network with superior antiplasticizing ability is constructed based on a novel multifunctional cross-linker. This unique bischloro/bibenzimidazole (A2B2-type) molecular structure has extremely high reactivity, including self-reaction among the cross-linkers and inter-reaction between the cross-linker and PBI molecules. The resulting imidazole-rich cross-linked membranes exhibit the desired combination of high ADLs, high conductivity, outstanding dimensional-mechanical stability, and excellent fuel cell performance. In comparison to a corresponding linear PBI membrane, one membrane with a high content of the cross-linker of 30% has a 100 wt % increased acid uptake, a doubling in proton conductivity at 200 degrees C, and a maximum power density of 533 mW.cm(-2) at 160 degrees C without humidification.

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