| 1 |
Pem fuel cells for transportation and stationary power generation applications  |
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| 2 |
Assessment of the environmental benefits of transport and stationary fuel cells  |
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| 3 |
Y. M. Lee and H. B. Park, “Development of membrane materials for direct methanol fuel cell”, Membrane Journal, 10, 103 (2000). |
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| 4 |
B. C. H. Steele and A. Heinzel, “Materials for fuel-cell technologies”, Nature, 414, 345 (2001). |
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| 5 |
An assessment of alkaline fuel cell technology  |
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| 6 |
Alkaline fuel cells: contemporary advancement and limitations☆  |
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| 7 |
Prospects for Alkaline Anion‐Exchange Membranes in Low Temperature Fuel Cells  |
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| 8 |
Performance of alkaline fuel cells: A possible future energy system?  |
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| 9 |
Poly(ethylene-co-tetrafluoroethylene)-Derived Radiation-Grafted Anion-Exchange Membrane with Properties Specifically Tailored for Application in Metal-Cation-Free Alkaline Polymer Electrolyte Fuel Cells  |
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| 10 |
Transport Properties of Hydroxide and Proton Conducting Membranes  |
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| 11 |
Anionic polysulfone ionomers and membranes containing fluorenyl groups for anionic fuel cells  |
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| 12 |
High-Temperature Polybenzimidazole Fuel Cell Membranes via a Sol-Gel Process  |
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| 13 |
High temperature proton exchange membranes based on polybenzimidazoles for fuel cells  |
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| 14 |
Hydrogen/oxygen polymer electrolyte membrane fuel cells (PEMFCs) based on alkaline-doped polybenzimidazole (PBI)  |
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