研究目的
Investigating the synthesis, luminescent properties, and cytotoxicity evaluation of mesoporous multi-silica layer-coated Y2O3:Eu core-shell nanoparticles for potential photonic-based biomedical applications.
研究成果
The study successfully synthesized mesoporous multi-silica layer-coated Y2O3:Eu core-shell nanoparticles with improved solubility, biocompatibility, and non-toxicity. The nanoparticles exhibited high hydrophilicity due to surface-functionalized silanol groups, making them promising candidates for photonic-based biomedical applications. Further research is needed to explore their potential in vivo applications.
研究不足
The study focuses on the synthesis and characterization of mesoporous multi-silica layer-coated Y2O3:Eu core-shell nanoparticles and their cytotoxicity evaluation. The limitations include the need for further in vivo studies to confirm the biocompatibility and non-toxicity of the nanoparticles for biomedical applications.
1:Experimental Design and Method Selection:
The study employed a urea-based decomposition process for the preparation of Y2O3:Eu nanoparticles, followed by surface modification with nanoporous and mesoporous silica layers using modified sol-gel methods.
2:Sample Selection and Data Sources:
The samples were characterized using various techniques including XRD, FE-TEM, FE-SEM, EDX, TGA, FTIR, FT-Raman, UV–Vis, and photoluminescence measurements.
3:List of Experimental Equipment and Materials:
Materials used include Y2O3, europium oxide, CTAB, TEOS, ethanol, urea, HNO3, NaOH, and NH4OH. Equipment used includes Powder XRD, FE-TEM, FE-SEM, BET measurement, FTIR spectrometer, UV–Vis spectrophotometer, Fluorolog-3 spectrophotometer, Raman spectrometer, thermogravimetric analyzer, and Zeta PALS 90 Plus particle size analyzer.
4:Experimental Procedures and Operational Workflow:
The synthesis involved the preparation of Y2O3:Eu NPs, followed by coating with nanoporous and mesoporous silica layers. The samples were then characterized for their structural, morphological, thermal, optical, and photoluminescent properties.
5:Data Analysis Methods:
The data were analyzed using various spectroscopic and microscopic techniques to evaluate the properties of the synthesized nanoparticles.
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N?cetyltrimethyl ammonium bromide
CTAB
Sigma-Aldrich
Used as a surfactant in the synthesis of mesoporous silica shells.
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Tetraethyl orthosilicate
TEOS
Sigma-Aldrich
Used as a precursor for the synthesis of silica shells.
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FE-TEM
JEM-2100F
JEOL
Used to determine the shape and size of the samples.
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FE-SEM
JEOL JSM 7600F
JEOL
Used to observe the morphology of the sample.
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FTIR spectrometer
Vertex 80
Bruker
Used to record FTIR spectra of the samples.
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UV–Vis spectrophotometer
Cary 60
Agilent Technologies
Used to record absorption spectra of the samples.
Cary 60 UV-Vis Spectrophotometer
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Y2O3
BDH Chemicals
Used as a core material for the synthesis of luminescent nanoparticles.
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Europium oxide
Alfa Aesar
Used as a dopant in the synthesis of luminescent nanoparticles.
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Powder XRD
PANalytical X'Pert
Used to examine the phase purity and crystal structure of the materials.
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Fluorolog-3 spectrophotometer
FL3-11
Horiba Jobin Yvon
Used to measure photoluminescence spectra of the samples.
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Raman spectrometer
Horiba Jobin Yvon HR800
Horiba Jobin Yvon
Used to measure Raman spectra of the samples.
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Thermogravimetric analyzer
Mettler Toledo
Used to perform thermal analysis of the samples.
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Zeta PALS 90 Plus particle size analyzer
Brookhaven Instruments Corporation
Used to perform dynamic light scattering and zeta potential measurements.
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