Abstract
Mg-Zr co-doping in Ta3N5 suppresses intrinsic defects, significantly enhancing the photocatalytic hydrogen production performance via water splitting. However, the microscopic mechanisms linking Mg/Zr dopants to carrier separation, Pt co-catalyst dispersion, and surface reactions remain unclear. Here, using first-principles calculations, we elucidate the individual and synergistic roles of Mg and Zr in improving the photocatalytic performance of Ta3N5 for hydrogen evolution from water splitting. Mg and Zr doping facilitates carrier separation, compensates for intrinsic defects through charge compensation, and increases carrier concentration. Critically, the coupling of Mg with oxygen impurities modulates the surface electronic structure, promoting Pt dispersion, while Zr coupling with oxygen impurities modifies Pt single-atom electronic states, reducing the hydrogen evolution reaction energy barrier. The synergy between Mg-Zr co-doping and oxygen impurities maximizes the hydrogen evolution rate. This work resolves the debate on the mechanisms of Mg/Zr doping in Ta3N5, providing theoretical insights and design principles for efficient and stable photocatalytic systems.
| Original language | English |
|---|---|
| Article number | 115424 |
| Journal | Catalysis Today |
| Volume | 459 |
| DOIs | |
| State | Published - 1 Nov 2025 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- Charge compensation
- Element doping
- First-principles calculation
- Hydrogen evolution reaction
- Photocatalysis
- Tantalum nitride
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