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T. E. Itina

Publications and source records attributed to T. E. Itina.

3 recordsLinked to original sources

Plume dynamics and nanoparticle formation in ultra-short laser ablation of metals

Nanoparticle formation by femtosecond laser ablation is investigated for different experimental conditions. Dynamics of the laser plume expansion is visualized based on numerical simulations and the possibility of primary nanoparticle formation is analyzed. Calculations are performed for metals under different background conditions. The effects of the background environment are considered, including initial expansion stage of the ejected atoms and clusters, nucleation, collisions, and longer scale nanoparticle evolution. Nanoparticle size distribution is shown to evolve from a decreasing function to the commonly observed bell-shaped distribution as early as at 50 microseconds after the beginning of the laser pulse. However, at the end of the initial plume expansion stage, the supersaturation parameter can be sufficiently high for a much longer diffusion-driven nanoparticle growth to enter into play. In this case, the major nanoparticle formation process is based on the so-called catastrophic nucleation accompanied by collisional growth, which determines the final size distribution. The obtained calculation results explain numerous experimental findings and help to predict both nanoparticle plume evolution and changes in its size distribution.

cond-mat.mtrl-sci↗

Suppression of ablation in femtosecond double pulse experiments

We report the physical reasons of a curious decrease in the crater depth observed for long delays in experiments with femtosecond double pulses. Detailed hydrodynamic modeling demonstrates that the ablation mechanism is dumped when the delay between the pulses exceeds the electron-ion relaxation time. In this case, the interaction of the second laser pulse with the expanding target material leads to the formation of the second shock wave suppressing the rarefaction wave created by the first pulse. The evidence of this effect follows from the pressure and density profiles obtained at different delays after the first laser pulse.

physics.comp-ph↗

Material decomposition mechanisms in femtosecond laser interactions with metals

A numerical hydrodynamic study of femtosecond laser ablation is presented. A detailed analysis of material decomposition is performed using a thermodynamically complete equation of state with separate stable and metastable phase states and phase boundaries. The lifetime of the metastable liquid state is estimated based on the classical theory of homogeneous nucleation. In addition, mechanical fragmentation of the target material is controlled based on available criteria. As a result, several ablation mechanisms are observed. A major fraction of the ablated material, however, is found to originate from the metastable liquid region, which is decomposed either thermally in the vicinity of the critical point into a liquid-gas mixture, or mechanically at high strain rate and negative pressure into liquid droplets and chunks. The calculation results explain available experimental findings.

physics.comp-ph↗