Ni-(oxy)hydroxide-based materials are promising earth-abundant catalysts for electrochemical water oxidation in basic media. Recent findings demonstrate that incorporation of trace Fe impurities from commonly used KOH electrolytes significantly improves oxygen evolution reaction (OER) activity over NiOOH electrocatalysts. Because nearly all previous studies detailing structural differences between α-Ni(OH)<sub>2</sub>/γ-NiOOH and β-Ni(OH)<sub>2</sub>/β-NiOOH were completed in unpurified electrolytes, it is unclear whether these structural changes are unique to the aging phase transition in the Ni-(oxy)hydroxide matrix or if they arise fully or in part from inadvertent Fe incorporation. Here, we report an investigation of the effects of ...
Cobalt oxides and (oxy)hydroxides have been widely studied as electrocatalysts for the oxygen evolu...
Abstract Fe-containing transition-metal (oxy)hydroxides are highly active oxygen-evolution reaction ...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...
Ni (oxy)hydroxide based materials are promising earth abundant catalysts for electrochemical water o...
Ni (oxy)hydroxide based materials are promising earth abundant catalysts for electrochemical water o...
Fe plays a critical, but not yet understood, role in enhancing the activity of the Ni-based oxygen e...
A detailed investigation has been carried out of the structure and electrochemical activity of elect...
Fe-doped Ni (oxy)hydroxide, Ni(Fe)O<sub><i>x</i></sub>H<sub><i>y</i></sub>, is one of the most-ac...
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...
Iron doping of nickel oxide films results in enhanced activity for promoting the oxygen evolution re...
The effects of varying alkaline electrolyte and electrolyte Fe levels on the performance and active-...
The effects of varying alkaline electrolyte and electrolyte Fe levels on the performance and active-...
Layered double hydroxide (LDH) and amorphous nickel–iron (oxy)hydroxides (Ni<sub>1–<i>x</i></sub>Fe...
Ni/Fe oxyhydroxides are the best performing Earth-abundant electrocatalysts for water oxidation. How...
Cobalt oxides and (oxy)hydroxides have been widely studied as electrocatalysts for the oxygen evolu...
Abstract Fe-containing transition-metal (oxy)hydroxides are highly active oxygen-evolution reaction ...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...
Ni (oxy)hydroxide based materials are promising earth abundant catalysts for electrochemical water o...
Ni (oxy)hydroxide based materials are promising earth abundant catalysts for electrochemical water o...
Fe plays a critical, but not yet understood, role in enhancing the activity of the Ni-based oxygen e...
A detailed investigation has been carried out of the structure and electrochemical activity of elect...
Fe-doped Ni (oxy)hydroxide, Ni(Fe)O<sub><i>x</i></sub>H<sub><i>y</i></sub>, is one of the most-ac...
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...
Iron doping of nickel oxide films results in enhanced activity for promoting the oxygen evolution re...
The effects of varying alkaline electrolyte and electrolyte Fe levels on the performance and active-...
The effects of varying alkaline electrolyte and electrolyte Fe levels on the performance and active-...
Layered double hydroxide (LDH) and amorphous nickel–iron (oxy)hydroxides (Ni<sub>1–<i>x</i></sub>Fe...
Ni/Fe oxyhydroxides are the best performing Earth-abundant electrocatalysts for water oxidation. How...
Cobalt oxides and (oxy)hydroxides have been widely studied as electrocatalysts for the oxygen evolu...
Abstract Fe-containing transition-metal (oxy)hydroxides are highly active oxygen-evolution reaction ...
Understanding the oxygen evolution reaction (OER) activity and stability of the NiFe-based materials...