Theory-guided design of 3d transition-metal doped Ni2P(001) enables superior bifunctional catalysis for hydrazine-assisted hydrogen production

We systematically investigate the doping of 24 homonuclear 3 d transition metal configurations into the Ni 2 P(001). Our results reveal that the 1*Cr@Ni 2 P, 1*V@Ni 2 P, and 2*Ti@Ni 2 P are candidates for bifunctional hydrazine oxidation reaction (HzOR)/hydrogen evolution reaction (HER) electrocatalysis because they exhibit low formation energies and display more favorable Gibbs free energy barriers of the rate-determining steps (Δ G RDS ) and optimal hydrogen adsorption Gibbs free energies (Δ G H* ) compared to pure Ni 2 P(001). Our machine learning analyses indicate that the formation energy and the d -band center serve as key predictive descriptors for HzOR and HER activities, respectively. Moreover, constant-potential density functional theory calculations confirm that at pH = 7 and U = 0 V vs reversible hydrogen electrode, the 1*Cr@Ni 2 P, 1*V@Ni 2 P, and 2*Ti@Ni 2 P electrocatalysts exhibit excellent bifunctional activity, with Δ G RDS /Δ G H* values of 0.10/−0.37 eV, 0.22/−0.19 eV, and 0.20/−0.10 eV, respectively. Thus, this can significantly reduce practical implementation costs compared to harsh acidic or alkaline environments.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-09-11
DOI
https://doi.org/10.1016/j.ijhydene.2026.157468
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
Field-Weighted Citation Impact
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article

Theory-guided design of 3d transition-metal doped Ni2P(001) enables superior bifunctional catalysis for hydrazine-assisted hydrogen production

Wentao Wang, Yonggang Wu, Jinyang Zhang, Yuli Yan et al.
International Journal of Hydrogen Energy
Electrocatalysts for Energy Conversion
article

Theory-guided design of 3d transition-metal doped Ni2P(001) enables superior bifunctional catalysis for hydrazine-assisted hydrogen production

Wentao Wang, Yonggang Wu, Jinyang Zhang, Yuli Yan, Zhenzhen Feng, Bingyan Cheng
article en

Abstract

We systematically investigate the doping of 24 homonuclear 3 d transition metal configurations into the Ni 2 P(001). Our results reveal that the 1*Cr@Ni 2 P, 1*V@Ni 2 P, and 2*Ti@Ni 2 P are candidates for bifunctional hydrazine oxidation reaction (HzOR)/hydrogen evolution reaction (HER) electrocatalysis because they exhibit low formation energies and display more favorable Gibbs free energy barriers of the rate-determining steps (Δ G RDS ) and optimal hydrogen adsorption Gibbs free energies (Δ G H* ) compared to pure Ni 2 P(001). Our machine learning analyses indicate that the formation energy and the d -band center serve as key predictive descriptors for HzOR and HER activities, respectively. Moreover, constant-potential density functional theory calculations confirm that at pH = 7 and U = 0 V vs reversible hydrogen electrode, the 1*Cr@Ni 2 P, 1*V@Ni 2 P, and 2*Ti@Ni 2 P electrocatalysts exhibit excellent bifunctional activity, with Δ G RDS /Δ G H* values of 0.10/−0.37 eV, 0.22/−0.19 eV, and 0.20/−0.10 eV, respectively. Thus, this can significantly reduce practical implementation costs compared to harsh acidic or alkaline environments.

International Journal of Hydrogen EnergyVol. 275
Henan University (CN), Guizhou University (CN), Guizhou Education University (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 29%
Electrocatalysts for Energy Conversion
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Theory-guided design of 3d transition-metal doped Ni2P(001) enables superior bifunctional catalysis for hydrazine-assisted hydrogen production — Wentao Wang, Yonggang Wu, et al. · International Journal of Hydrogen Energy (2026) | TGRS Research Map | TGRS