Author
Listed:
- Adebunmi, Mubarak A.
- Alkhaldi, Refah S.
- Gondal, M.A.
- Alsayoud, A.
- Mohamed, Mohamed Jaffer Sadiq
- Almessiere, Munirah A.
- Baykal, A.
Abstract
Cost-effective and highly efficient bifunctional electrocatalysts for green hydrogen production, especially those based on chemical composition adjustment, are crucial for preserving a pollution-free natural environment. In this work, a unique Pd-doped ZnCo2S4 coated Nickel foam as ZnPdxCo2-xS4 (0.00≤x ≤ 0.10)@NF nano electrocatalyst was synthesized successfully via a two-step hydrothermal approach. The microstructure was analyzed using the XRD, SEM, TEM, HR-TEM, and XPS techniques. The electrocatalyst ZnPdxCo2-xS4 (0.00≤x ≤ 0.10)@NF nano electrocatalyst demonstrated improved performance in the HER, with an overpotential of 166 mV, a calculated Tafel slope of 127.7 mV/dec, and sustained stability lasting over 40 h, as determined by chronopotentiometry methods. The electrochemical analysis of the nano electrocatalyst with a 6.0 % Pd4+ doping concentration demonstrated enhanced performance toward the HER process. These noticeable improvements can be attributed to a much higher ECSA (27.0 cm2) and quicker charge transfer kinetics at the interface between the semiconductor and the electrolyte. Furthermore, our DFT calculations reveal that Pd sites on the ZnPdxCo2-xS4 catalyst, with a near-thermoneutral energy barrier of −0.12 eV, enhance water dissociation and facilitate the Volmer step. The electronic properties further reveal that the Pd dopant tunes the electronic configuration, creating a synergistic effect among active sites and accelerating HER kinetics. This noble metal (Pd) dopant tuning significantly improved the catalyst's performance for hydrogen evolution reactions.
Suggested Citation
Adebunmi, Mubarak A. & Alkhaldi, Refah S. & Gondal, M.A. & Alsayoud, A. & Mohamed, Mohamed Jaffer Sadiq & Almessiere, Munirah A. & Baykal, A., 2026.
"Palladium-doped bimetallic sulfide spinel nano-electrocatalyst grown on nickel foam for efficient green hydrogen production validated by first principal DFT study,"
Renewable Energy, Elsevier, vol. 256(PE).
Handle:
RePEc:eee:renene:v:256:y:2026:i:pe:s0960148125019433
DOI: 10.1016/j.renene.2025.124279
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