4.8 Article

Understanding the doping effect on hydrogen evolution activity of transition-metal phosphides: Modeled with Ni2P

Journal

APPLIED CATALYSIS B-ENVIRONMENTAL
Volume 295, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.apcatb.2021.120283

Keywords

DFT calculations; Charge transfer; d-band center; Transition metal phosphide; Hydrogen evolution reaction

Funding

  1. Natural Science Foundation of Shaanxi Province [2020JZ02]
  2. National Natural Science Foundation of China [51802255]
  3. project of Innovative Team of Shaanxi Province [2020TD001]
  4. National Key Research and Development Program of China [2017YFE0193900]
  5. China Fundamental Research Funds for the Central Universities

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Investigating the correlation between changes in electronic structure and catalytic activity in electrocatalysts is crucial for design and synthesis. Using Ni2P as a model catalyst for the hydrogen evolution reaction, the study systematically investigates the impact of doping heteroatoms on electrochemical performance. Results show that Badar charge increment and d-band center on the surface of doped Ni2P catalyst have a significant linear correlation with hydrogen adsorption energy. Additionally, experimental validation confirms that Fe and Co-doped Ni2P exhibits the best catalytic activity, with XPS and electrochemical tests supporting the theoretical analysis.
Investigating the correlations between the changes of electronic structure and catalytic activity is a major requisite for the design and synthesis of the electrocatalysts with promising performance. Herein by using Ni2P as a model electrocatalyst, which is one of the most promising catalysts toward hydrogen evolution reaction (HER), the intrinsic issues in electrochemical HER performance affected by doping heteroatoms (i.e., Sn, Pb, Ti, Nb, V, Li, Cr, Na, Mn, Fe, and Co) are systemically investigated via first-principles calculations and coupled with experimental validation. The results reveal that the increment of Badar charge (Delta Q) and d-band center (epsilon(d)) on the surface of doped Ni2P catalyst have a significant linear correlation with the hydrogen adsorption energy (Delta G(H)*). As a result, the epsilon d of Ni atom is found to locate near the optimal region caused by Fe and Co heteroatoms, suggesting that the Fe and Co doped Ni2P should have the best catalytic activity toward HER. Furthermore, the experimental validation process is performed by the synthesis and characterization of the corresponding heteroatom doped Ni2P. The X-ray photoelectron spectroscopy (XPS) reveals that the charge transfer and the shift of epsilon(d) on the activate site of the doped Ni2P catalyst are consistent with the theoretical analysis. The electrochemical tests demonstrate that Co- and Fe-doped Ni2P catalysts exhibit a Pt-like performance with 31 mV overpotentials at 10 mA cm(-2), which is in good agreement with the proposed theory. Our results suggest that the charge redistribution on the surface of the catalysts induced by doping effect is the key to improve their activity, which can be used to guide the design of catalysts in other related catalysis.

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