研究目的
Investigating the microstructural, optoelectronic, and photoelectrochemical properties of TiO2 nanotubes decorated with PbS nanoparticles elaborated by pulsed laser deposition.
研究成果
The study successfully demonstrated the decoration of TiO2 NTAs with PbS NPs using PLD, with controlled size and coverage by varying NLP. The PbS NPs/TiO2 NTAs heterojunction showed enhanced photoelectrochemical properties, with a maximum photoconversion efficiency of 2.5% achieved at NLP = 2500. The findings suggest potential applications in photoelectrochemical solar cells and photocatalysis.
研究不足
The study focuses on the optimization of NLP for PbS NPs deposition on TiO2 NTAs and their photoelectrochemical properties. The limitations include the complexity of controlling the stoichiometry and surface defects in PbS NPs, which affect their optical and electronic properties.
1:Experimental Design and Method Selection
TiO2 NTAs were synthesized using the electrochemical anodization procedure. PbS NPs were deposited on TiO2 NTAs using the PLD method. The size of the PbS NPs was controlled by varying the number of laser pulses (NLP) during the PLD process.
2:Sample Selection and Data Sources
The samples were characterized using SEM, TEM, XRD, UV–Vis spectroscopy, and photoluminescence.
3:List of Experimental Equipment and Materials
A pulsed KrF excimer laser (λ = 248 nm; repetition rate = 20 Hz) was used for PLD. SEM (Jeol JSM-6300), TEM (FEI Tecnai G20), XRD (PANalytical, Almelo, The Netherlands), UV–Vis–IR spectrometer, and fluorescence spectrophotometer (Perkin Elmer LS55) were used for characterization.
4:Experimental Procedures and Operational Workflow
The TiO2 NTAs were prepared by a double-anodization process. PbS NPs were deposited on TiO2 NTAs at room temperature with varying NLP. The samples were then characterized using various techniques to study their properties.
5:Data Analysis Methods
The crystallite size of the PbS NPs was deduced from XRD patterns using the Debye–Scherrer method. The optical bandgap was estimated from absorbance and transmission spectra.
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