研究目的
To develop a facile strategy for enhancing the photoluminescence of noble metal nanoclusters in aqueous solutions through electrostatic assembly for applications in bioimaging and bioanalysis.
研究成果
The electrostatic assembly of Au and Ag nanoclusters results in a 40-fold PL enhancement, tunable emission, and pH responsiveness, making the nanocomposites suitable for use as fluorescent switches and pH probes, with potential for further improvements in nanocluster brightness.
研究不足
The fluorescence enhancement is dependent on specific conditions such as pH and the presence of ions, which may limit stability and applicability in certain biological environments. The method may not be universally applicable to all types of nanoclusters.
1:Experimental Design and Method Selection:
The study involved synthesizing GSH-stabilized Au and Ag nanoclusters, followed by their electrostatic assembly into AuxAg1-x nanocomposites under microwave irradiation or room temperature conditions to achieve fluorescence enhancement via aggregation-induced emission (AIE).
2:Sample Selection and Data Sources:
Samples included GSH-Au NCs and GSH-Ag NCs synthesized from HAuCl4, AgNO3, and glutathione, with characterization using various spectroscopic and microscopic techniques.
3:List of Experimental Equipment and Materials:
Equipment included a Biotage microwave synthesizer, LS-55 fluorophotometer, FLS1000 for QY and lifetime, Cary 100 UV-vis spectrophotometer, JEOL JEM-2100 TEM, XPS (Thermo Fisher ESCALAB 250Xi), ICP-MS, DLS (NanoZS90), and PB-10 pH meter. Materials were purchased from Sigma-Aldrich and Sinopharm Chemical Reagent Co.
4:Experimental Procedures and Operational Workflow:
Synthesis involved mixing GSH-Au NCs and GSH-Ag NCs, reacting under microwave at 40°C for 30 min or standing at room temperature, followed by characterization using TEM, XPS, fluorescence, UV-vis, ICP-MS, and DLS to study formation and properties.
5:Data Analysis Methods:
Data were analyzed using statistical methods for size distribution, fluorescence intensity measurements averaged over three tests, and spectral analysis to determine mechanisms.
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fluorophotometer
LS-55
Perkin-Elmer
Used to perform fluorescence properties measurements of nanoclusters and nanocomposites.
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spectrophotometer
FLS1000
Edinburgh
Used to measure fluorescence quantum yields and lifetimes.
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UV-vis spectrophotometer
Cary 100
Agilent
Used to record UV-vis absorption spectra.
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electron microscope
JEM-2100 (HR)
JEOL
Used for TEM imaging and EDS analysis.
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XPS
ESCALAB 250Xi
Thermo Fisher
Used to analyze elemental composition of nanoclusters and nanocomposites.
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DLS system
NanoZS90
Malvern
Used for dynamic light scattering measurements to study particle size and zeta potential.
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microwave synthesizer
Biotage
Biotage
Used for conducting microwave reactions to synthesize nanocomposites.
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ICP-MS
Used to characterize concentrations of gold and silver elements.
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pH meter
PB-10
Sartorius
Used to measure the pH of solutions.
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