研究目的
Investigating the effect of annealing temperature on the morphology, structural and optical properties of tungsten oxide (WO3) nanoparticles synthesized by a coprecipitation process.
研究成果
The study demonstrated that annealing temperature significantly affects the crystallite size, lattice strain, and optical bandgap of WO3 nanoparticles. The material's properties make it suitable for applications in photocatalysis and electrochromic devices. Further research could explore other synthesis methods or applications.
研究不足
The study focuses on the effect of annealing temperature on WO3 nanoparticles synthesized by coprecipitation. Other synthesis methods or conditions were not explored. The carrier concentration could not be calculated due to the polycrystalline nature of the material.
1:Experimental Design and Method Selection
WO3 nanoparticles were synthesized by a coprecipitation method and annealed at different temperatures (400°C to 900°C). The morphology, structure, and optical properties were studied using XRD, SEM, HRTEM, UV–Vis spectrophotometry, and Raman spectroscopy.
2:Sample Selection and Data Sources
Na2WO4·2H2O, NaCl, and NaOH were used as precursors. The synthesized nanoparticles were annealed at various temperatures to study the effect on their properties.
3:List of Experimental Equipment and Materials
Bruker D8 Advance x-ray powder diffractometer, SEM (EVO 18; Carl Zeiss), HRTEM (Tecnai G2 F30 S-TWIN FEG), UV–Vis spectrometer (Hitachi U 3300), Raman spectrometer (Renishaw InVia microscopy).
4:Experimental Procedures and Operational Workflow
Precursors were mixed in deionized water, HCl was added to adjust pH, heated and stirred, then washed and centrifuged. The product was dried and annealed at different temperatures. Characterization was performed using the listed equipment.
5:Data Analysis Methods
XRD data was analyzed using the Debye–Scherrer formula and Williamson–Hall analysis. UV–Vis data was analyzed using Tauc’s relation to determine the bandgap.
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x-ray powder diffractometer
Bruker D8 Advance
Bruker
Identifying the crystal phase composition and crystallite size of the synthesized WO3 nanomaterial.
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scanning electron microscope
EVO 18
Carl Zeiss
Investigating the surface morphology of the WO3 nanomaterial.
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high-resolution transmission electron microscope
Tecnai G2 F30 S-TWIN FEG
FEI
Obtaining HRTEM micrographs of the synthesized WO3 nanomaterials.
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UV–Vis spectrometer
Hitachi U 3300
Hitachi
Studying the optical properties of the synthesized nanomaterials.
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Raman spectrometer
Renishaw InVia microscopy
Renishaw
Investigating the phase of the synthesized material.
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