研究目的
To synthesize scandium molybdate microstructures with tunable phase and morphology using a microwave heating method, and to study their electronic properties, surface energies, and photoluminescence characteristics.
研究成果
Scandium molybdate microstructures with controllable phase and morphology were successfully synthesized via microwave heating. The Sc/Mo molar ratio significantly influences morphology and optical properties. DFT calculations provided insights into electronic structure and surface energies. Eu3+-doped samples show promising red emission for applications in LEDs and displays, with potential for extension to other molybdates.
研究不足
The synthesis may involve impurities like MoO3, and the method requires optimization for purity and scalability. Theoretical calculations use LDA, which may underestimate band gaps.
1:Experimental Design and Method Selection:
The study used a microwave heating method for synthesis without surfactants or templates, combined with first-principles DFT calculations for theoretical analysis.
2:Sample Selection and Data Sources:
Samples were prepared by varying Sc/Mo molar ratios and reaction times, using analytical-grade reagents.
3:List of Experimental Equipment and Materials:
Household microwave oven, D8 Advance diffractometer (Bruker), SEM (Hitachi S-3400N), TEM (JEM-2100), TG-DTA analyzer (TA-50), ICP spectrometer (POEMS), UV-vis spectrophotometer (Shimadzu UV-3600), FLS980 spectrometer (Edinburgh Analytical Instrument), VASP software for DFT calculations.
4:Experimental Procedures and Operational Workflow:
Solutions of Sc(NO3)3·6H2O and (NH4)6Mo7O24·4H2O were mixed, stirred, heated in a microwave oven at 210 W for specified times, cooled, washed, dried, and characterized. Eu3+-doped samples were similarly prepared.
5:Data Analysis Methods:
XRD for phase analysis, SEM/TEM for morphology, EDS for composition, DRS for band gap calculation, PL spectra for luminescence, DFT for electronic structure and surface energies.
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D8 Advance diffractometer
D8 Advance
Bruker
X-ray diffraction for phase analysis
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SEM
S-3400N
Hitachi
Scanning electron microscopy for morphology analysis
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TEM
JEM-2100
JEOL
Transmission electron microscopy for microstructure analysis
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UV-vis spectrophotometer
UV-3600
Shimadzu
Diffuse reflection spectroscopy for band gap measurement
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TG-DTA analyzer
TA-50
Thermogravimetric and differential thermal analysis
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ICP spectrometer
POEMS
TJA
Inductive coupled plasma atomic emission spectroscopy for elemental analysis
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FLS980 spectrometer
FLS980
Edinburgh Analytical Instrument
Photoluminescence spectroscopy
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Microwave oven
Household
Microwave heating for synthesis
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VASP software
VASP 5.2
Density functional theory calculations
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