研究目的
Investigating the effect of pulse duration on nanoparticle generation in pulsed laser ablation in liquids (PLAL) and understanding the mechanisms responsible for the generation of nanoparticles at the initial dynamic stage of laser ablation.
研究成果
The study reveals three distinct nanoparticle generation mechanisms in PLAL, depending on the laser pulse duration. These mechanisms contribute to the broad nanoparticle size distributions observed in experiments. The findings have implications for controlling nanoparticle size and composition through adjustments in laser parameters and the liquid environment.
研究不足
The simulations are computationally expensive, limiting the ability to run multiple simulations for different irradiation conditions. The modeling of laser interaction with heterogeneous multi-component plume during the laser pulse is challenging and not fully addressed in this study.
1:Experimental Design and Method Selection:
Large-scale atomistic simulations were performed for a bulk Ag target covered by water and irradiated by 400 ps, 1 ns, and 2 ns laser pulses. A model combining a fully atomistic description of laser interaction with the metal target, a coarse-grained representation of the water environment, and acoustic impedance matching boundary conditions was used.
2:Sample Selection and Data Sources:
The simulations were performed for a bulk Ag target covered by water.
3:List of Experimental Equipment and Materials:
The computational system included a Ag target and water environment, with the laser interaction simulated using a combined TTM-MD model.
4:Experimental Procedures and Operational Workflow:
The energy deposition by a laser pulse was simulated through a source term added to the TTM equation for the electron temperature, simulating the excitation of the conduction-band electrons by a laser pulse with a Gaussian temporal profile.
5:Data Analysis Methods:
The evolution of the system was analyzed through temperature and density contour plots, snapshots of atomic configurations, and analysis of nanoparticle size distributions.
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