Nickel phosphide (Ni2P) is a promising material for the electrocatalytic generation of hydrogen from water. Here, we present a chemical picture of the fundamental mechanism of Volmer–Tafel steps in hydrogen evolution reaction (HER) activity under alkaline conditions at the (0001) and (100) surfaces of Ni2P using dispersion-corrected density functional theory calculations. Two terminations of each surface (Ni3P2- and Ni3P-terminated (0001); and Ni2P- and NiP-terminated (100)), which have been shown to coexist in Ni2P samples depending on the experimental conditions, were studied. Water adsorption on the different terminations of the Ni2P (0001) and (100) surfaces is shown to be exothermic (binding energy in the range of 0.33−0.68 eV) and cha...
We are grateful for the generous computing resources from CSC-IT Center for Scientific Computing and...
The activity of Ni<sub>2</sub>P catalysts for the hydrogen evolution reaction (HER) is currently lim...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...
Ni-based catalysts are attractive alternatives to noble metal electrocatalysts for the hydrogen evol...
Ni-based catalysts are attractive alternatives to noble metal electrocatalysts for the hydrogen evol...
Hydrogen evolution reaction (HER) is directly relevant to green hydrogen production from water split...
Hydrogen evolution reaction (HER) is directly relevant to green hydrogen production from water split...
We present insights into the mechanism and the active site for hydrogen evolution on nickel phosphid...
We report microcrystalline Ni<sub>3</sub>P as a noble-metal-free electrocatalyst for the H<sub>2</su...
We report a comprehensive density functional theory (DFT) study on the stability, geometric structur...
Hydrogen (H2) has been regarded as the most promising energy carrier and is predicted to address glo...
Bifunctional electrocatalysts for efficient hydrogen generation from water splitting must overcome b...
Electrocatalysts of the hydrogen evolution and oxidation reactions (HER and HOR) are of critical imp...
Hydrogen fuel is regarded as the future clean energy alternative to fossil fuels. Water electrolysis...
Heterostructured catalysts with unique interfaces and properties endow distinct advantages for many ...
We are grateful for the generous computing resources from CSC-IT Center for Scientific Computing and...
The activity of Ni<sub>2</sub>P catalysts for the hydrogen evolution reaction (HER) is currently lim...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...
Ni-based catalysts are attractive alternatives to noble metal electrocatalysts for the hydrogen evol...
Ni-based catalysts are attractive alternatives to noble metal electrocatalysts for the hydrogen evol...
Hydrogen evolution reaction (HER) is directly relevant to green hydrogen production from water split...
Hydrogen evolution reaction (HER) is directly relevant to green hydrogen production from water split...
We present insights into the mechanism and the active site for hydrogen evolution on nickel phosphid...
We report microcrystalline Ni<sub>3</sub>P as a noble-metal-free electrocatalyst for the H<sub>2</su...
We report a comprehensive density functional theory (DFT) study on the stability, geometric structur...
Hydrogen (H2) has been regarded as the most promising energy carrier and is predicted to address glo...
Bifunctional electrocatalysts for efficient hydrogen generation from water splitting must overcome b...
Electrocatalysts of the hydrogen evolution and oxidation reactions (HER and HOR) are of critical imp...
Hydrogen fuel is regarded as the future clean energy alternative to fossil fuels. Water electrolysis...
Heterostructured catalysts with unique interfaces and properties endow distinct advantages for many ...
We are grateful for the generous computing resources from CSC-IT Center for Scientific Computing and...
The activity of Ni<sub>2</sub>P catalysts for the hydrogen evolution reaction (HER) is currently lim...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...