研究目的
To develop a microreactor with porous copper fibers for synthesizing nitrogen-doped carbon dots (N-CDs) with high stability and photoluminescence (PL) quantum yield (QY) for the detection of Hg2+ ions.
研究成果
The study successfully synthesized N-CDs with high PL QY using a microreactor with porous copper fibers. The N-CDs demonstrated excellent sensitivity and selectivity for Hg2+ detection, with a LOD of 2.54 nM. The research highlights the potential of N-CDs in environmental and hazard detection applications.
研究不足
The study focuses on the synthesis and application of N-CDs for Hg2+ detection, but the scalability and practical application in real-world environmental samples may require further investigation.
1:Experimental Design and Method Selection
The study involved optimizing synthesis conditions such as reaction temperature, flow rate, ethylenediamine dosage, and porosity of copper fibers to achieve N-CDs with high PL QY. The relationship between copper fibers with different porosities and the N-CDs was investigated using XPS and FTIR.
2:Sample Selection and Data Sources
N-CDs were synthesized using a microreactor with porous copper fibers. The precursors were ethylenediamine (EDA) and citric acid (CA) in deionized water.
3:List of Experimental Equipment and Materials
SEM (Merlin, Germany), XRD (D8-Advance, Bruker, Karlsruhe, Germany), TEM (JEOL, Tokyo, Japan), XPS (Kratos Axis Ulra DLD, Kratos, Manchester, UK), FTIR spectrometer (Vertex 33, Bruker, Karlsruhe, Germany), UV-Vis spectrometer (Shimadzu, Kyoto, Japan), Solartron 1280B electrochemical workstation, fluorescence spectrophotometer (RF-6000, Shimadzu).
4:Experimental Procedures and Operational Workflow
The synthesis involved injecting precursors into a microreactor with controlled temperature and flow rate. The products were dialyzed and freeze-dried. The N-CDs were then characterized and tested for Hg2+ detection.
5:Data Analysis Methods
PL QY was calculated using a standard equation with quinine sulfate as the reference. The detection of Hg2+ ions was analyzed using the Stern-Volmer equation.
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XPS
Kratos Axis Ulra DLD
Kratos
Collecting XPS data
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FTIR spectrometer
Vertex 33
Bruker
Obtaining FTIR spectra
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Fluorescence spectrophotometer
RF-6000
Shimadzu
Recording the PL spectrum of samples
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XRD
D8-Advance
Bruker
Characterizing the crystal structure of the N-CDs
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TEM
2100F
JEOL
Measuring the crystal structure and surface morphology of the N-CDs
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SEM
Merlin
Germany
Determining the morphology of porous copper fibers
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UV-Vis spectrometer
Shimadzu
Kyoto
Achieving UV-Vis absorption spectra of the N-CDs
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Electrochemical workstation
Solartron 1280B
Carrying out cyclic voltammetry
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