研究目的
Assessing the reliability of rare-earth-doped luminescent nanothermometers by evaluating how their luminescence is influenced by artefacts such as excitation power dependence, self-absorption, and solvent absorption, and providing strategies to enhance accuracy.
研究成果
Rare-earth-doped luminescent nanothermometers are susceptible to significant artefacts from excitation power dependence, self-absorption, and solvent absorption, leading to potential errors in temperature measurements of tens of degrees Celsius. Strategies to mitigate these include using low doping levels, controlling experimental parameters, and selecting emission bands less affected by overlaps. Future work should focus on designing more reliable nanothermometers and detectors.
研究不足
The study is limited to specific rare-earth-doped nanoparticles (SrF2 with Yb,Tm and Nd) and may not generalize to all nanothermometers. Experimental conditions such as concentration and doping levels could affect results, and in vivo applications might introduce additional complexities not fully addressed.
1:Experimental Design and Method Selection:
The study involved synthesizing SrF2 nanoparticles doped with Yb,Tm and Nd ions via a hydrothermal method. Spectroscopy was used to analyze emission spectra under controlled conditions, focusing on ratiometric analysis for temperature sensing.
2:Sample Selection and Data Sources:
Samples included SrF2:
3:218Yb,002Tm nanocrystals dispersed in D2O and SrF
4:5Nd nanocrystals dispersed in H2O, selected for their temperature-sensitive emission in biological windows. List of Experimental Equipment and Materials:
Transmission electron microscope (JEM1010, Jeol), digital camera (TemCam-F416, TVIPS), laser diodes (LU0975M500 and LU0786M250, Lumics), titanium-sapphire laser (3900S, Spectra Physics), microscope objectives, spectrometers (iHR320, Horiba and Kymera 193i, Andor), detectors (CCD Synapse, Horiba and InGaAs iDus, Andor), absorption spectrometer (Lambda1050, PerkinElmer), temperature stage (PE120, Linkam).
5:Experimental Procedures and Operational Workflow:
Nanoparticles were synthesized and characterized via TEM. Emission spectra were recorded at various excitation powers, depths in dispersions, and temperatures using laser excitation and spectrometers. Depth was controlled with a micrometric screw, and temperature was maintained with a stage.
6:Data Analysis Methods:
Data were analyzed using ratiometric methods to calculate thermal relative sensitivity (SR) and thermal equivalent noise (TEN), with fits to Lambert-Beer law for self-absorption effects.
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Transmission Electron Microscope
JEM1010
Jeol
Used for imaging nanoparticles to determine size and morphology.
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Laser Diode
LU0975M500
Lumics
Provides excitation light at 975 nm for spectroscopy.
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Laser Diode
LU0786M250
Lumics
Provides excitation light at 790 nm for spectroscopy.
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Spectrometer
Kymera 193i
Andor
Analyzes emission spectra for Nd3+ ions.
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Detector
InGaAs iDus
Andor
Records luminescence signals in the infrared range.
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Absorption Spectrometer
Lambda1050
PerkinElmer
Measures extinction spectra of nanoparticles and solvents.
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Digital Camera
TemCam-F416
TVIPS
Captures TEM images for analysis.
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Titanium-Sapphire Laser
3900S
Spectra Physics
Used for continuous wave excitation in spectroscopy.
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Spectrometer
iHR320
Horiba
Analyzes emission spectra for Tm3+ ions.
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Detector
CCD Synapse
Horiba
Records luminescence signals for spectroscopy.
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Temperature Stage
PE120
Linkam
Controls and maintains sample temperature during experiments.
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