研究目的
Investigating the photothermal heating of gold nanostars in a real-size container through multiscale modelling and experimental study.
研究成果
The proposed multiscale theoretical approach demonstrates good potential for predicting the photothermal behaviour of plasmonic nanoparticle suspensions in real-scale containers. The heating dynamics depend mainly on the nanoparticle shape and the matching between the laser excitation and the particle plasmon resonance. The model can be further refined by including beam extinction in the ray tracing and particle size dispersion.
研究不足
The model does not account for the extinction caused by nanoparticle absorption and scattering in the ray tracing modelling, nor does it include size dispersion in the simulations. Additionally, the effects of re-absorption within the colloid are not considered.
1:Experimental Design and Method Selection:
A multiscale modelling approach combining electromagnetic field, ray tracing, and heat transfer simulations to model the photothermal response of gold nanostars and nanospheres in a real-size container.
2:Sample Selection and Data Sources:
Gold nanostars and nanospheres were synthesized and characterized by electron microscopy and optical spectroscopy.
3:List of Experimental Equipment and Materials:
FEI Tecnai F20 system for TEM, Jasco V-670 UV-Vis-NIR spectrometer for optical spectra, FLIR E50 thermal imaging camera for temperature monitoring, and a 785 nm continuous wave laser for irradiation.
4:Experimental Procedures and Operational Workflow:
Laser-induced heating experiments were conducted by irradiating colloid-filled Eppendorf tubes and monitoring temperature dynamics.
5:Data Analysis Methods:
The temperature dynamics were analyzed using simulations and experimental data to validate the multiscale model.
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