A real-time and real-space time-dependent density functional is applied to simulate the nonlinear electronphoton interactions during shaped femtosecond laser pulse train ablation of diamond. Effects of the key pulse train parameters such as the pulse separation, spatial/temporal pulse energy distribution and pulse number per train on the electron excitation and energy absorption are discussed. The calculations show that photonelectron interactions and transient localized electron dynamics can be controlled including photon absorption, electron excitation, electron density, and free electron distribution by the ultrafast laser pulse train. © 2012 IOP Publishing Ltd
The electron dynamics in dielectric materials induced by intense femtosecond laser pulses is theoret...
Diamond irradiated with an ultrashort intense laser pulse in the regime of photon energies from soft...
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Energy transfer processes from a high-intensity ultrashort laser pulse to electrons in simple dielec...
Femtosecond-laser-induced evolution of -quartz bandgap was calculated using rst principles. First,Ti...
Femtosecond-laser-induced evolution of $$\alpha$$-quartz bandgap was calculated using first principl...
We studied experimentally and theoretically the structural transition of diamond under an irradiatio...
2012 International High-Power Laser Ablation Conference 30 april -30 may 2012International audienceE...
A femtosecond (fs) pulse duration is shorter than many physical/chemical characteristic times, such ...
The electron dynamics in dielectric materials induced by intense femtosecond laser pulses is theoret...
Diamond irradiated with an ultrashort intense laser pulse in the regime of photon energies from soft...
We develop a computational approach for ultrafast nano-optics based on first-principles time-depende...
This Letter presents first-principles calculations of nonlinear electron-photon interactions in crys...
Nonlinear interaction between femtosecond laser pulse and simple dielectric solid, silicon, at an in...
In this contribution we review in detail our recently developed hybrid model able to trace simultane...
This study develops a quantum mechanical model to investigate energy absorption in ultrafast laser o...
Part of Focus on High Energy Density Physics. In this paper, we present a novel theoretical approach...
International audienceElectronic excitation-relaxation processes induced by ultra-short laser pulses...
Energy transfer processes from a high-intensity ultrashort laser pulse to electrons in simple dielec...
Femtosecond-laser-induced evolution of -quartz bandgap was calculated using rst principles. First,Ti...
Femtosecond-laser-induced evolution of $$\alpha$$-quartz bandgap was calculated using first principl...
We studied experimentally and theoretically the structural transition of diamond under an irradiatio...
2012 International High-Power Laser Ablation Conference 30 april -30 may 2012International audienceE...
A femtosecond (fs) pulse duration is shorter than many physical/chemical characteristic times, such ...
The electron dynamics in dielectric materials induced by intense femtosecond laser pulses is theoret...
Diamond irradiated with an ultrashort intense laser pulse in the regime of photon energies from soft...
We develop a computational approach for ultrafast nano-optics based on first-principles time-depende...