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Therefore, the oxides substituted with Ni and Co ions are most suitable as anode materials in alkaline solution.
Since palladium-based materials are efficient anodic materials in alkaline media, bimetallic PdAu nanoparticles supported on vapor-grown carbon nanofibres (VGCNF) are used as catalysts for glycerol oxidation in this study.
The thermodynamic data determined here (hydrogen absorption capacities and hydride formation pressures) are consistent with their application as negative electrode materials in alkaline medium.
Little, however, is known about the electrochemistry and even less on surface chemistry of these materials in alkaline media simulating concrete pore solutions.
Despite the increased use of stainless steel for concrete reinforcement in harsh chloride environments, comparatively little is known about the surface chemistry of these materials in alkaline media simulating concrete pore solutions.
Electrochemical impedance spectroscopy and cyclic voltammetry have been the main tools used to study the growth and evolution of the passive layers formed on those materials in alkaline medium.
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Stability of the electrode material in alkaline medium under stressing galvanostatic conditions was investigated.
This N-CDC catalyst could be considered as a promising cathode material in alkaline fuel cells.
In addition, the electrochemical performance of the Cu2O/Cu particles as the working electrode material in alkaline solution was systematically investigated.
Aluminium dissolution was also studied in term of hydrogen production, but one of the advantageous applications of aluminium corrosion is metal/air batteries in which aluminium is used as anode material in alkaline medium.
Nickel hydroxide (Ni(OH 2), as one of the most important transition metal hydroxides, has received increasing attention due to its extensive applications, especially as a positive electrode active material, in alkaline rechargeable Ni-based batteries [16].
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