研究目的
To develop an efficient and high-throughput IR heating technique to synthesize sulfur and nitrogen co-doped graphene quantum dots (SN-GQDs) for the highly sensitive detection of mercury ions (Hg2+) in an aqueous solution.
研究成果
The IR-assisted technique successfully synthesized SN-GQDs and N-GQDs for the detection of Hg2+ ions. SN-GQDs showed a 4.23 times higher sensitivity than N-GQDs, making them a promising candidate for environmental monitoring and bioimaging applications.
研究不足
The study focuses on the detection of Hg2+ ions in aqueous solutions and may not be directly applicable to other types of samples or environments without further optimization.
1:Experimental Design and Method Selection:
The synthesis involved an IR-assisted pyrolysis of glucose, urea, and ammonia sulfate at 260°C.
2:Sample Selection and Data Sources:
SN-GQDs and N-GQDs were synthesized for comparison.
3:List of Experimental Equipment and Materials:
IR furnace, FT-IR spectrometer, HR-TEM, Raman spectrometer, ICP-OES/MS, XPS, UV-vis spectrometer, FL spectrometer.
4:Experimental Procedures and Operational Workflow:
The mixture was heated to 260°C in air, cooled, sieved, washed, and centrifuged.
5:Data Analysis Methods:
FL intensity was measured at 360 nm, and the Stern-Volmer equation was used to calculate sensitivity.
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FL spectrometer
F-7000 FLS920P
Hitachi
FL emission spectra measurement
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HR-TEM
Talos F200s
FEI
Micro-structural morphology observation
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UV-vis spectrometer
Cary 60
Agilent Technology
Absorbance spectra measurement
Cary 60 UV-Vis Spectrophotometer
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Nicolet 380 spectrometer
380
Nicolet
FT-IR spectra measurement
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Raman spectrometer
Micro-Raman spectrometer
Renishaw
Crystalline structure characterization
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ICP-OES/MS
Not provided
Not provided
Chemical compositions analysis
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XPS
VG ESCA210
Fison
Chemical composition characterization
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