First-principles electron dynamics control simulation of diamond under femtosecond laser pulse train irradiation
Cong Wang, Lan Jiang, Feng Wang, Xin Li, Yanping Yuan, Hai Xiao, Hai-Lung Tsai, Yongfeng Lu
Abstract
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Cong Wang, Lan Jiang, Feng Wang, Xin Li, Yanping Yuan, Hai Xiao, Hai-Lung Tsai, Yongfeng Lu
Abstract
Open-access reader
A real-time and real-space time-dependent density functional is applied to simulate the nonlinear electron-photon 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 photon-electron 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.
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A real-time and real-space time-dependent density functional is applied to simulate the nonlinear electron-photon 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 photon-electron 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.
Key concepts: Ultrashort pulse, Ultrafast laser spectroscopy, Femtosecond, Femtosecond pulse shaping, Multiphoton intrapulse interference phase scan, Laser, Pulse (music), Electron