研究目的
To overcome the challenges of photocorrosion and fast recombination of CdS in visible-light-responsive photocatalysts used for hydrogen production by combining SiC and TiO2 with CdS.
研究成果
The study successfully improved the efficiency of hydrogen generation by compositing SiC and TiO2 with CdS, achieving a significant reduction in photocorrosion and fast recombination. The most efficient catalyst exhibited a high hydrogen generation ability and apparent quantum yield, demonstrating the potential for applying this method to other visible-light-responsive photocatalysts.
研究不足
The study focused on the combination of SiC and TiO2 with CdS for hydrogen production under visible light. The limitations include the specific conditions under which the photocatalysts were tested and the need for further optimization for broader applications.
1:Experimental Design and Method Selection:
The study combined SiC (β modification) and TiO2 with CdS to prevent photocorrosion and fast recombination. The methodology included a simple two-step method for synthesizing the photocatalysts.
2:Sample Selection and Data Sources:
CdS/SiC nanocomposites were prepared via a wet chemistry approach, and CdS/SiC/TiO2 composites were synthesized via a sol?gel process.
3:List of Experimental Equipment and Materials:
Materials included SiC powder, Cd(NO3)2·4H2O, Na2S·9H2O, titanium isopropoxide, and H2PtCl6·6H2O. Equipment included XRD, DRS, fluorescence spectroscopy, TEM/EDS analysis, and XPS analysis.
4:2O. Equipment included XRD, DRS, fluorescence spectroscopy, TEM/EDS analysis, and XPS analysis.
Experimental Procedures and Operational Workflow:
4. Experimental Procedures and Operational Workflow: The synthesis involved mechanical stirring, filtration, washing, drying, and calcination. Photocatalytic experiments were conducted in a gas-closed circulation system with a Xe lamp as the light source.
5:Data Analysis Methods:
The apparent quantum yield was calculated based on the number of reacted electrons and incident photons.
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