
pmid: 23744735
AbstractThe main challenge of commercialization of the hydrogen economy is the lack of convenient and safe hydrogen storage materials, which can adsorb and release a significant amount of hydrogen at ambient conditions. Finding and designing suitable cost‐effective materials are vital requirements to overcome the drawbacks of investigated materials. Because of its outstanding electronic, thermal, and chemical properties, the electrically conducting polyaniline (PANI) has a high potential in hydrogen storage applications. In this review, the progress in the use of different structures of conducting PANI, its nanocomposites as well as activated porous materials based on PANI as hydrogen storage materials is presented and discussed. The effect of the unique electronic properties based on the π‐electron system in the backbone of these materials in view of the hydrogen uptake and the relevant mechanisms are highlighted.magnified image
Energy-Generating Resources, Aniline Compounds, Surface Properties, Electric Conductivity, Temperature, Electrons, Nanocomposites, Thermodynamics, Adsorption, Porosity, Hydrogen
Energy-Generating Resources, Aniline Compounds, Surface Properties, Electric Conductivity, Temperature, Electrons, Nanocomposites, Thermodynamics, Adsorption, Porosity, Hydrogen
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