研究目的
To resolve the problem of strong fluorescence quenching of lanthanide-containing polyoxometalates (POMs) in water by designing three-dimensional nanoparticles built by mixed Weakley-type europium-containing POMs and tetra-n-alkyl ammonium with enhanced fluorescent properties for Cu2+ detection.
研究成果
The design of notably fluorescence-enhanced solutions by a cationic component (TMAB) and an anionic cluster POMs (EuW10) through the ionic self-assembly strategy was successful. The system showed excellent responsiveness to pH and could act as sensitive fluorescence sensors for Cu2+ in water, providing an environmentally friendly and real-time rapid detection method.
研究不足
The study focuses on the enhancement of fluorescence properties and Cu2+ detection but does not extensively explore the application in real-world scenarios or the potential interference from other metal ions in complex samples.
1:Experimental Design and Method Selection:
The study utilized an ionic self-assembly (ISA) technique driven by electrostatic interaction between EuW10 and TA to design nanoparticles with enhanced fluorescent properties.
2:Sample Selection and Data Sources:
The complexes of EuW10 with four different chain lengths of tetra-n-alkyl ammonium (TA) were constructed, with the concentration of EuW10 maintained at 0.6 mM and that of TA gradually increased.
3:6 mM and that of TA gradually increased. List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: Materials included EuW10, TMAB, TEAB, TBAB, THAB, and TMPB. Instruments used were TEM, SEM, AFM, FT-IR, ζ-potential measurements, UV?vis spectra, and fluorescence spectrometry.
4:Experimental Procedures and Operational Workflow:
The phase behavior of EuW10/TA systems was observed as a function of cTA. The morphology and fluorescent properties were characterized, and the system's response to pH and ability to detect Cu2+ were tested.
5:Data Analysis Methods:
The fluorescence spectra, ζ-potential, and time-resolved fluorescence decay curves were analyzed to understand the system's properties and mechanisms.
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JEM-1011
JEOL
Transmission electron microscopy
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Hitachi SU8010
Hitachi
Field-emission scanning electron microscopy
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Panasonic Super Dynamic II WV-CP460
Panasonic
Confocal laser scanning microscopy
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Dimension Icon
American
Atomic force microscopy
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α-T spectrometer
Germany Bruker Optics
Fourier transform infrared spectra
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Malvern Zetasizer Nano ZS ZEN3600
Malvern
ζ-potential measurements
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Hitachi, U-4100
Hitachi
UV?vis spectra
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Thermo Scientific Lumina
Thermo Fisher
Fluorescence spectra
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FLSP920
Edinburgh Instruments Ltd
Fluorescence lifetimes determination
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