研究目的
To study the photocatalytic activity under visible light irradiation and enhance the photocatalytic performance of mpg-C3N4/Ag2O nanocomposites.
研究成果
The mpg-C3N4/Ag2O nanocomposites exhibited enhanced photocatalytic activity under visible-light irradiation, with the mpg-C3N4/Ag2O-50 nanocomposite showing the highest degradation rate of MO. The enhanced activity was attributed to improved visible-light absorption and the formation of p–n heterojunctions, which facilitated charge carrier separation. The photocatalyst demonstrated good stability over five cycles, indicating its potential for environmental applications.
研究不足
The study focuses on the photocatalytic degradation of MO under visible-light irradiation, and the stability of the photocatalyst was tested over five cycles. Potential areas for optimization include further enhancing the photocatalytic activity and stability for practical applications.
1:Experimental Design and Method Selection:
The study involved the synthesis of mpg-C3N4/Ag2O nanocomposites via a simple liquid phase reaction at room temperature. Characterization techniques included XRD, SEM, TEM, N2-BET, FT-IR, DRS, and PL to analyze the phase structure, purity, morphology, spectroscopic and photoluminescence emission performance.
2:Sample Selection and Data Sources:
The samples were prepared with different mass ratios of mpg-C3N4 and Ag2O.
3:2O. List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: Instruments used included a Shimadzu XRD-6100Lab X-ray diffractometer, Nicolet FT-IR spectrometer, JEOL JSM-6700F SEM, JEM-2010F TEM, Quantachrome NOVA2000e instrument, PerkinElmer Lambda 750 s UV-vis-NIR spectrometer, and Varian Cary Eclipse spectrometer.
4:Experimental Procedures and Operational Workflow:
The photocatalytic activity was evaluated by degrading MO under visible-light irradiation, with samples taken at intervals to measure absorbance.
5:Data Analysis Methods:
The degradation rate of MO was calculated based on absorbance measurements.
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