激光器
冲击波
超短脉冲
材料科学
脉冲持续时间
通量
光学
振幅
脉搏(音乐)
光离子化
电离
休克(循环)
超快激光光谱学
电子
原子物理学
多光子脉冲内干涉相位扫描
数值孔径
物理
飞秒脉冲整形
等离子体
饱和(图论)
频率分辨光学选通
带宽限制脉冲
光圈(计算机存储器)
电磁辐射
动能
脉冲整形
丝状化
作者
Nikita Rishkov,N. M. Asharchuk,V. I. Yusupov,E. I. Mareev
出处
期刊:Photonics
[Multidisciplinary Digital Publishing Institute]
日期:2025-10-28
卷期号:12 (11): 1067-1067
标识
DOI:10.3390/photonics12111067
摘要
The control of mechanical effects, such as shock waves, induced by ultrashort laser pulses in water is crucial for applications in biomedicine and material processing. However, optimizing these effects requires a detailed understanding of how laser parameters, particularly pulse duration, influence the underlying energy deposition mechanisms. This study systematically investigates the dependence of shock wave amplitude on fluence (up to 10 J/cm2) and pulse duration (200 fs to 10 ps) of near-infrared laser pulses under tight focusing conditions (Numerical aperture NA = 0.42), using a combined experimental and numerical approach based on the dynamical rate equation model. Our key finding is that the shock wave amplitude is governed by the total kinetic energy of the electrons in the laser-induced plasma, leading to a distinct maximum at approximately 5 ps (confidence interval: 4.5–5.5 ps) and saturation at fluences ~7 J/cm2. This optimum arises from a balance between the increasing effectiveness of avalanche ionization for longer pulses and the competing effects of electron recombination and reduced photoionization efficiency. Consequently, these results identify a practical parameter window—pulse durations of 4–6 ps at moderate fluences—for optimizing laser-induced mechanical effects in applications such as laser surgery in aqueous media.
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