Electrochemical templating through porous membranes is applied to form arrays of micrometer long Ni nanowires (NWs). Detailed structural and electrochemical characterization, including electrochemical impedance spectroscopy (EIS), was conducted to assess the electrocatalytic properties of these Ni NW arrays for the O2 evolution reaction (OER) in 1 M KOH. Detailed structural analysis showed that Ni NWs have a diameter of ca. 350 nm and a mean 80 nm average distance between the NW center. For the longest NWs (20 μm long), the ratio between the pore opening and pore length is 0.4%. From detailed HR-TEM and EELS analysis providing information on the chemical state of atoms from quantitative analysis of the signals, Ni NWs are composed of a Ni m...
In the field of water-alkaline electrolyzer, the develop of nanoporous nickel electrodes with low co...
textAs demands for alternative sources of energy increase over the coming decades, water electrolysi...
grantor: University of TorontoMetallic Ni nanowires were deposited electrochemically into ...
Hydrogen production by water electrolysis (WE) is a very promising technology because it is a pollu...
In recent years, the interest towards green hydrogen has drastically increased due to the global dec...
Different Ni nanostructure arrays were fabricated by pulsed electrodeposition from a Watts bath insi...
Fuel-cell systems are of interest for a wide range of applications, in part for their utility in pow...
Owing to the progressive abandoning of the fossil fuels and the increase of atmospheric CO2 concentr...
In the field of water-alkaline electrolyzer, the development of nanoporous low cost nickel electrode...
Platinum (Pt)-coated nickel (Ni) nanowires (PtNiNWs) are synthesized by the partial spontaneous galv...
Hydrogen production by water electrolysis (WE) is a very promising technology because it is a pollut...
Catalytic water splitting for commercial hydrogen production demands efficient and robust earth-abun...
Highly active catalysts from the earth-abundant metals are essential to materialize the low-cost pro...
A homologous Ni–Co based nanowire system, consisting of both nickel cobalt oxide and nickel cobalt s...
Oxygen evolution reaction (OER) is critical for producing high purity hydrogen and oxygen via electr...
In the field of water-alkaline electrolyzer, the develop of nanoporous nickel electrodes with low co...
textAs demands for alternative sources of energy increase over the coming decades, water electrolysi...
grantor: University of TorontoMetallic Ni nanowires were deposited electrochemically into ...
Hydrogen production by water electrolysis (WE) is a very promising technology because it is a pollu...
In recent years, the interest towards green hydrogen has drastically increased due to the global dec...
Different Ni nanostructure arrays were fabricated by pulsed electrodeposition from a Watts bath insi...
Fuel-cell systems are of interest for a wide range of applications, in part for their utility in pow...
Owing to the progressive abandoning of the fossil fuels and the increase of atmospheric CO2 concentr...
In the field of water-alkaline electrolyzer, the development of nanoporous low cost nickel electrode...
Platinum (Pt)-coated nickel (Ni) nanowires (PtNiNWs) are synthesized by the partial spontaneous galv...
Hydrogen production by water electrolysis (WE) is a very promising technology because it is a pollut...
Catalytic water splitting for commercial hydrogen production demands efficient and robust earth-abun...
Highly active catalysts from the earth-abundant metals are essential to materialize the low-cost pro...
A homologous Ni–Co based nanowire system, consisting of both nickel cobalt oxide and nickel cobalt s...
Oxygen evolution reaction (OER) is critical for producing high purity hydrogen and oxygen via electr...
In the field of water-alkaline electrolyzer, the develop of nanoporous nickel electrodes with low co...
textAs demands for alternative sources of energy increase over the coming decades, water electrolysi...
grantor: University of TorontoMetallic Ni nanowires were deposited electrochemically into ...