Developing active and stable electrocatalysts for the oxygen evolution reaction (OER) is essential to enhance the efficiency of water splitting. Herein, we report a nickel/tungsten carbide (Ni/WC) composite catalyst in which WC nanoparticles are embedded underneath thin Ni layers as a highly active OER catalyst in an alkaline electrolyte. The thin Ni layer has a modulated electronic structure stemming from the interaction with the WC. The Ni/WC composite exhibits excellent OER activity and durability in a 1 M KOH solution. The turnover frequency of the Ni/WC composite (0.58 s–1) is increased by approximately 5.8 times relative to that of the Ni nanoparticles (0.10 s–1). The significant increase in catalytic activity of the Ni/WC composite c...
Core–shell composites with strong phase–phase contact could provide an incentive for catalytic activ...
The tungsten carbide and cobalt-modified Ni-based catalyst [Ni–Co–WC/multiwall carbon nanotubes (MWC...
Water splitting (WS) has attracted increasing attention for producing highly pure hydrogen and oxyge...
Metal carbides are promising materials for electrocatalytic reactions such as water electrolysis. Ho...
Ni-based compounds have been widely used for catalytic water splitting in alkaline media. NiO-based ...
Electrocatalytic water oxidation is a rate-determining step in the water splitting reaction. Here, w...
Establishing a correlation between the crystal structure and electrocatalytic activity is crucial to...
The synergistic effect of WC and Pd has large benefit for ethanol electrooxidation. The small-sized ...
The oxygen evolution reaction (OER) limits the energy efficiency of electrocatalytic systems due to ...
The exploration of efficient and economical electrocatalysts towards the oxygen evolution reaction (...
Developing low-cost yet highly efficient earth-abundant electrocatalysts for oxygen evolution reacti...
Platinum nanocatalyst at nano-tungsten carbide was synthesized, characterized and tested for oxygen ...
Electrochemical water splitting is a clean technology that can store the intermittent renewable wind...
Developing low cost, highly active and stable electrocatalysts for both the hydrogen evolution react...
Water splitting has received more and more attention because of its huge potential to generate clean...
Core–shell composites with strong phase–phase contact could provide an incentive for catalytic activ...
The tungsten carbide and cobalt-modified Ni-based catalyst [Ni–Co–WC/multiwall carbon nanotubes (MWC...
Water splitting (WS) has attracted increasing attention for producing highly pure hydrogen and oxyge...
Metal carbides are promising materials for electrocatalytic reactions such as water electrolysis. Ho...
Ni-based compounds have been widely used for catalytic water splitting in alkaline media. NiO-based ...
Electrocatalytic water oxidation is a rate-determining step in the water splitting reaction. Here, w...
Establishing a correlation between the crystal structure and electrocatalytic activity is crucial to...
The synergistic effect of WC and Pd has large benefit for ethanol electrooxidation. The small-sized ...
The oxygen evolution reaction (OER) limits the energy efficiency of electrocatalytic systems due to ...
The exploration of efficient and economical electrocatalysts towards the oxygen evolution reaction (...
Developing low-cost yet highly efficient earth-abundant electrocatalysts for oxygen evolution reacti...
Platinum nanocatalyst at nano-tungsten carbide was synthesized, characterized and tested for oxygen ...
Electrochemical water splitting is a clean technology that can store the intermittent renewable wind...
Developing low cost, highly active and stable electrocatalysts for both the hydrogen evolution react...
Water splitting has received more and more attention because of its huge potential to generate clean...
Core–shell composites with strong phase–phase contact could provide an incentive for catalytic activ...
The tungsten carbide and cobalt-modified Ni-based catalyst [Ni–Co–WC/multiwall carbon nanotubes (MWC...
Water splitting (WS) has attracted increasing attention for producing highly pure hydrogen and oxyge...