We report a comprehensive density functional theory (DFT) study on the stability, geometric structure, electronic characteristics, and catalytic activity for the hydrogen evolution reaction (HER) on low-index Ni3P crystal surfaces, namely, the (001), (100), (110), (101) and (111) planes with different surface terminations. The results indicate that P-rich and some stoichiometric surfaces are thermodynamically stable. Eight stable surfaces were selected to investigate the electronic characteristics and catalytic activity. The (110)B facet of Ni3P is indispensable for the HER, because it not only displays improved electrocatalytic activity, but also possesses suitable potential and high stability. Increasing the active sites through doping or...
Nanoparticles of nickel phosphide are promising materials to replace the currently used rare Pt-grou...
The activity of Ni<sub>2</sub>P catalysts for the hydrogen evolution reaction (HER) is currently lim...
| openaire: EC/H2020/686053/EU//CritCatIn this study, we looked at the hydrogen evolution reaction o...
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...
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...
Nickel phosphide (Ni2P) is a promising material for the electrocatalytic generation of hydrogen from...
Ni5P4 has received considerable attention recently as a potentially viable substitute for Pt as the ...
We report microcrystalline Ni<sub>3</sub>P as a noble-metal-free electrocatalyst for the H<sub>2</su...
We are grateful for the generous computing resources from CSC-IT Center for Scientific Computing and...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...
Nanoparticles of nickel phosphide are promising materials to replace the currently used rare Pt-grou...
The activity of Ni<sub>2</sub>P catalysts for the hydrogen evolution reaction (HER) is currently lim...
| openaire: EC/H2020/686053/EU//CritCatIn this study, we looked at the hydrogen evolution reaction o...
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...
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...
Nickel phosphide (Ni2P) is a promising material for the electrocatalytic generation of hydrogen from...
Ni5P4 has received considerable attention recently as a potentially viable substitute for Pt as the ...
We report microcrystalline Ni<sub>3</sub>P as a noble-metal-free electrocatalyst for the H<sub>2</su...
We are grateful for the generous computing resources from CSC-IT Center for Scientific Computing and...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...
Computational catalyst design has the potential to revolutionize the energy and chemical industries ...
Nanoparticles of nickel phosphide are promising materials to replace the currently used rare Pt-grou...
The activity of Ni<sub>2</sub>P catalysts for the hydrogen evolution reaction (HER) is currently lim...
| openaire: EC/H2020/686053/EU//CritCatIn this study, we looked at the hydrogen evolution reaction o...