研究目的
To improve the fluorescence performance of lac dye by preparing carbon quantum dots to diversify its applicability in fluorescence detection.
研究成果
The study demonstrated the novel utility of the fluorescent properties of the lac dye, which is helpful in visually detecting and tracking silicon dioxide and detecting the ethanol content of commercial products. The ld-CQDs showed significant improvement in fluorescence quantum yield and could be used as a highly sensitive fluorescent probe.
研究不足
The study does not mention the scalability of the synthesis method for industrial applications or the long-term stability of the ld-CQDs under various environmental conditions.
1:Experimental Design and Method Selection
The ld-CQDs were synthesized using lac dye as a precursor by a one-pot ethanol thermal method. The method avoided the use of strong acids and alkali, and reduced the numbers of required preparation steps.
2:Sample Selection and Data Sources
Lac dye was purchased from Kunming Xilaike Bio-technology CO. Ltd. All reagents were analytical pure and purchased from Aladdin Industrial Inc. Ltd. The water used was ultrapure water.
3:List of Experimental Equipment and Materials
High-pressure reactor (KOFD1-10/3 model), Transmission Electron Microscope (Tecnai G2 TF30), Scanning Electron Microscope (XL30E SEM), Fourier Transform Infrared Spectroscopy (Tenson 27), X-ray photoelectron spectrometer (PHI5000 Versaprobe-II), Elemental analyzer (Vario EL III), Thermogravimetric analyzer (STA 2500 Regulus), Particle Size Measurement (Nanotrac Wave II), Atomic Force Microscope (5500), Spectrofluorometer (FS5), UV-Vis spectrometer (Cary Series), Fluorescence spectrometer (F-4600), Laser scanning confocal microscopy (FV10i), Fluorescent inverted microscope (IX71).
4:Experimental Procedures and Operational Workflow
0.84 g of lac dye was added to 600 ml of anhydrous ethanol, stirred for 30 min, and then reacted in a high-pressure reactor at 243℃ for 24 hours. The mixture was centrifuged at 12,000 rpm for 30 min, filtered by an organic membrane of 0.45 μm, and the solid powder obtained from the filtrate after vacuum distillation.
5:Data Analysis Methods
The fluorescence intensity and quantum yield were measured. The effect of acid or alkali conditions on the fluorescence intensity of ld-CQDs was investigated. The composites of ld-CQDs/silicon dioxide were prepared and their fluorescence properties were analyzed.
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Transmission Electron Microscope
Tecnai G2 TF30
FEI
Used for observing the size and morphology of ld-CQDs.
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Atomic Force Microscope
5500
Bruker
Used for measuring the surface structure and morphology of ld-CQDs.
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Spectrofluorometer
FS5
Edinburgh instruments
Used for measuring the fluorescence lifetime of ld-CDQs and the composites.
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UV-Vis spectrometer
Cary Series
Agilent
Used for spectrometric measurements.
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Fluorescence spectrometer
F-4600
Hitachi
Used for measuring fluorescence spectra.
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Laser scanning confocal microscopy
FV10i
Olympus
Used for fluorescence imaging of ld-CQDs.
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Fluorescent inverted microscope
IX71
Olympus
Used for observing the composites of the ld-CQDs/silicon dioxide.
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High-pressure reactor
KOFD1-10/3
Used for the synthesis of ld-CQDs under high temperature and pressure.
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Scanning Electron Microscope
XL30E SEM
Philips
Used for observing the morphology of ld-CQDs.
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Fourier Transform Infrared Spectroscopy
Tenson 27
Brook
Used for characterizing the organic functional groups of the samples.
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X-ray photoelectron spectrometer
PHI5000 Versaprobe-II
Used for analyzing the surface elements of the sample.
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Elemental analyzer
Vario EL III
Elementar
Used for quantitative analysis of the elements.
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Thermogravimetric analyzer
STA 2500 Regulus
Netzsch
Used for testing thermal sample properties.
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Particle Size Measurement
Nanotrac Wave II
Microtrac
Used for measuring the sizes of the ld-CQDs particles.
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