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ULTRAFAST PHOTON-ELECTRON INTERACTIONS IN DIELECTRICS BY A SINGLE LASER PULSE

机译:单激光在电介质中的超快光子-电子相互作用

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摘要

This study develops a quantum mechanical model to investigate energy absorption in ultrafast laser of dielectrics. The model investigates the optical property variations, electron temperature, and density changes at femtosecond scales. The ionizations and electron heating are two major factors considered for pulse absorption occurring within the pulse duration. The flux-doubling model is employed to calculate the free electron generation mainly through impact ionization and photoionization. The quantum mechanical treatments are used to account for the specific heat and the relaxation time for free electrons. The time and space dependent optical properties of the dense plasma generated by the ultrafast laser pulse are calculated. The predictions of ablation threshold and ablation depth of fused silica and barium aluminum borosilicate (BBS) are in good agreements with published experimental data. The model greatly improves the accuracy in predicting the ablation depth and can predict the crater shape.
机译:这项研究建立了一个量子力学模型来研究电介质超快激光器中的能量吸收。该模型研究了飞秒尺度上的光学特性变化,电子温度和密度变化。电离和电子加热是在脉冲持续时间内发生的脉冲吸收的两个主要因素。通量倍增模型主要通过碰撞电离和光电离来计算自由电子的产生。量子力学处理用于说明比热和自由电子的弛豫时间。计算了由超快激光脉冲产生的稠密等离子体随时间和空间的光学特性。熔融石英和硼铝酸钡铝(BBS)的烧蚀阈值和烧蚀深度的预测与已发表的实验数据吻合良好。该模型大大提高了预测烧蚀深度的准确性,并可以预测弹坑形状。

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