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Adjustments of dielectrics craters and their surfaces by ultrafast laser pulse train based on localized electron dynamics control

机译:基于局部电子动力学控制的超快激光脉冲序列对电介质弹坑及其表面的调节

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A quantum model with the consideration of laser wave-particle duality based on the plasma model is employed for the femtosecond laser pulse train processing of fused silica. Effects of the key pulse train parameters, such as the pulse separation time and the number of pulses per train on the distributions of free electron are discussed. The calculations show that the spatial/temporal distributions of free electron can be adjusted by transient localized electron dynamics control using femtosecond laser pulse train design; the results are ablation shapes of craters and subwavelength ripples. It is also found that the first pulse separation time (Δt_1) can be used for rough adjustments of ablated structures, while the second pulse separation time (Δt_2) can be used for the fine tuning of ablated structures, especially the shapes of craters.
机译:基于等离子体模型的考虑了激光波对偶性的量子模型被用于熔融石英的飞秒激光脉冲序列处理。讨论了关键的脉冲列参数,例如脉冲分离时间和每列脉冲数对自由电子分布的影响。计算结果表明,通过使用飞秒激光脉冲序列设计的瞬态局部电子动力学控制,可以调节自由电子的时空分布。结果是烧蚀坑的形状和亚波长波纹。还发现第一脉冲分离时间(Δt_1)可用于烧蚀结构的粗调,而第二脉冲分离时间(Δt_2)可用于烧蚀结构的微调,特别是凹坑的形状。

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