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首页> 外文期刊>Laser Physics: An International Journal devoted to Theoretical and Experimental Laser Research and Application >Effects of key pulse train parameters on electron dynamics during femtosecond laser nonlinear ionization of silica
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Effects of key pulse train parameters on electron dynamics during femtosecond laser nonlinear ionization of silica

机译:飞秒激光对二氧化硅非线性电离过程中关键脉冲序列参数对电子动力学的影响

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摘要

The controlled, well-characterized evolution of the amplitude envelope and carrier-frequency sweep of ultrafast laser pulses permits the measurement and control of quantum transitions on a femtosecond time scale. This opens new perspectives to manipulate/adjust/interfere with the transient localized electron dynamics, corresponding material properties and phase change mechanisms, which are critical in laser microano fabrication. This study presents the first-principles calculations of nonlinear electron-photon interactions during femtosecond pulse train ablation of silica. A real-time and real-space time-dependent density functional theory (TDDFT) is used to describe the transient localized electron dynamics such as photon absorption, electron excitation and free electron distribution. The effects of key pulse train parameters (including the pulse separation, the number of pulses per train and temporal pulse energy distribution) on electron dynamics are investigated.
机译:超快激光脉冲的幅度包络和载频扫描的受控,特征明确的演变,可以在飞秒级的时间范围内测量和控制量子跃迁。这为操纵/调整/干扰瞬态局部电子动力学,相应的材料特性和相变机制打开了新的视野,这对于激光微/纳米制造至关重要。这项研究提出了飞秒脉冲二氧化硅消融过程中非线性电子-光子相互作用的第一性原理计算。实时和时空随时间变化的密度泛函理论(TDDFT)用于描述瞬态局部电子动力学,例如光子吸收,电子激发和自由电子分布。研究了关键脉冲列参数(包括脉冲间隔,每列脉冲数和时间脉冲能量分布)对电子动力学的影响。

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