A detailed investigation has been carried out of the structure and electrochemical activity of electrodeposited Ni-Fe films for the oxygen evolution reaction (OER) in alkaline electrolytes. Ni-Fe films with a bulk and surface composition of 40% Fe exhibit OER activities that are roughly 2 orders of magnitude higher than that of a freshly deposited Ni film and about 3 orders of magnitude higher than that of an Fe film. The freshly deposited Ni film increases in activity by as much as 20-fold during exposure to the electrolyte (KOH); however, all films containing Fe are stable as deposited. The oxidation of Ni(OH)2 to NiOOH in Ni films occurs at potentials below the onset of the OER. Incorporation of Fe into the film increases the potential a...
The amorphous NiFeOx(OH)(y) is synthesized on Fe, Ni, and Cu foam substrates to study the effects of...
Ni-(oxy)hydroxide-based materials are promising earth-abundant catalysts for electrochemical water ...
The oxygen evolution reaction (OER) is kinetically slow and hence a significant efficiency loss in e...
A detailed investigation has been carried out of the structure and electrochemical activity of elect...
A detailed investigation has been carried out of the structure and electrochemical activity of elect...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...
Fe plays a critical, but not yet understood, role in enhancing the activity of the Ni-based oxygen e...
Ni (oxy)hydroxide based materials are promising earth abundant catalysts for electrochemical water o...
A simple anodizing technique has been employed to develop highly active electrocatalysts that can be...
MSc (Chemistry), North-West University, Potchefstroom CampusAn efficient means to store renewable en...
Ni (oxy)hydroxide based materials are promising earth abundant catalysts for electrochemical water o...
Ni1-xFexOOH thin films prepared via cathodic electrodeposition have been demonstrated to be highly a...
Ni1-xFexOOH thin films prepared via cathodic electrodeposition have been demonstrated to be highly a...
The amorphous NiFeOx(OH)(y) is synthesized on Fe, Ni, and Cu foam substrates to study the effects of...
Ni-(oxy)hydroxide-based materials are promising earth-abundant catalysts for electrochemical water ...
The oxygen evolution reaction (OER) is kinetically slow and hence a significant efficiency loss in e...
A detailed investigation has been carried out of the structure and electrochemical activity of elect...
A detailed investigation has been carried out of the structure and electrochemical activity of elect...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...
Fe plays a critical, but not yet understood, role in enhancing the activity of the Ni-based oxygen e...
Ni (oxy)hydroxide based materials are promising earth abundant catalysts for electrochemical water o...
A simple anodizing technique has been employed to develop highly active electrocatalysts that can be...
MSc (Chemistry), North-West University, Potchefstroom CampusAn efficient means to store renewable en...
Ni (oxy)hydroxide based materials are promising earth abundant catalysts for electrochemical water o...
Ni1-xFexOOH thin films prepared via cathodic electrodeposition have been demonstrated to be highly a...
Ni1-xFexOOH thin films prepared via cathodic electrodeposition have been demonstrated to be highly a...
The amorphous NiFeOx(OH)(y) is synthesized on Fe, Ni, and Cu foam substrates to study the effects of...
Ni-(oxy)hydroxide-based materials are promising earth-abundant catalysts for electrochemical water ...
The oxygen evolution reaction (OER) is kinetically slow and hence a significant efficiency loss in e...