研究目的
Investigating the synthesis and photoluminescent properties of Tb3+ doped carbon nanodots for potential applications in time-resolved imaging and visualization in living biological samples.
研究成果
The study successfully synthesized Tb3+ doped CNDs using various methods, with the freezing-induced loading into CaCO3 microparticles showing the most effective Tb-CND coupling. This method offers a versatile route for introducing active components into CNDs, promising for applications in time-resolved imaging and visualization in biological samples.
研究不足
The study is limited by the challenges in separating CNDs from low molecular weight compounds and the lack of understanding of CNDs' composition and structure, which complicates the effective inclusion of dopants.
1:Experimental Design and Method Selection:
Different synthetic routes were explored to synthesize carbon nanodots (CNDs) doped with Tb ions, including hydrothermal treatment, mixing of CNDs and TbCl3 solutions, and freezing-induced loading into CaCO3 microparticles.
2:Sample Selection and Data Sources:
Sodium dextran sulfate (DS) was chosen as a carbon source due to its natural origin and the presence of anionic groups favoring cation binding.
3:List of Experimental Equipment and Materials:
Materials included dextran sulfate sodium salt, terbium chloride hexahydrate, Na2CO3, CaCl2, and Sephadex G-25 columns. Instruments included a Cary Eclipse fluorometer, Shimadzu UV-1800 spectrophotometer, FSM-1201 FTIR spectrometer, and JEOL ARM 200 F TEM.
4:Experimental Procedures and Operational Workflow:
Procedures involved hydrothermal treatment, mixing, freezing-induced loading, and fractionation with Sephadex G-25 columns.
5:Data Analysis Methods:
PL spectra, UV-vis absorption spectra, FTIR-spectra, and TEM images were analyzed to confirm Tb binding and characterize the CNDs.
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