超快激光诱导的固体到过密等离子体转变的光学探测

IF 20.6 Q1 OPTICS Light-Science & Applications Pub Date : 2024-05-08 DOI:10.1038/s41377-024-01444-y
Yasmina Azamoum, Georg Alexander Becker, Sebastian Keppler, Guillaume Duchateau, Stefan Skupin, Mickael Grech, Fabrice Catoire, Sebastian Hell, Issa Tamer, Marco Hornung, Marco Hellwing, Alexander Kessler, Franck Schorcht, Malte Christoph Kaluza
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摘要

理解固体目标与超短激光脉冲相互作用产生的动力学是一个具有挑战性的基本多物理问题,涉及原子和固体物理、等离子体物理和激光物理。从激光诱导烧蚀等低功率激光状态到激光驱动离子加速等高功率激光状态,了解基本过程的初始相互作用对于许多应用都至关重要。从理论和实验的角度来看,获取激光脉冲上升沿电离目标时形成的所谓前等离子体的特性是非常复杂的,而且这种激光诱导的从固态到皮秒时间尺度的过密等离子体转变的许多方面仍然是未决问题。一方面,激光驱动离子加速需要对预等离子体进行精确控制,因为加速过程的效率在很大程度上取决于脉冲相对论强度峰到达时的目标特性。另一方面,高效的激光烧蚀需要防止所谓的 "等离子体屏蔽"。通过捕捉相互作用初始阶段的动态,我们报告了前等离子体形成和演变的详细可视化过程。在强度为 1016 W/cm² 的激光上升沿期间,纳米级薄的类金刚石碳箔从固体转变为等离子体。单次近红外探针透射测量证明了密度超过 1023 cm-3(约为临界等离子体密度的 100 倍)的膨胀等离子体的亚皮秒动态。固态相互作用模型和动力学等离子体描述的互补性使我们能够深入了解初始电离、碰撞和膨胀的相互作用。
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Optical probing of ultrafast laser-induced solid-to-overdense-plasma transitions

Understanding the solid target dynamics resulting from the interaction with an ultrashort laser pulse is a challenging fundamental multi-physics problem involving atomic and solid-state physics, plasma physics, and laser physics. Knowledge of the initial interplay of the underlying processes is essential to many applications ranging from low-power laser regimes like laser-induced ablation to high-power laser regimes like laser-driven ion acceleration. Accessing the properties of the so-called pre-plasma formed as the laser pulse’s rising edge ionizes the target is complicated from the theoretical and experimental point of view, and many aspects of this laser-induced transition from solid to overdense plasma over picosecond timescales are still open questions. On the one hand, laser-driven ion acceleration requires precise control of the pre-plasma because the efficiency of the acceleration process crucially depends on the target properties at the arrival of the relativistic intensity peak of the pulse. On the other hand, efficient laser ablation requires, for example, preventing the so-called “plasma shielding”. By capturing the dynamics of the initial stage of the interaction, we report on a detailed visualization of the pre-plasma formation and evolution. Nanometer-thin diamond-like carbon foils are shown to transition from solid to plasma during the laser rising edge with intensities < 1016 W/cm². Single-shot near-infrared probe transmission measurements evidence sub-picosecond dynamics of an expanding plasma with densities above 1023 cm−3 (about 100 times the critical plasma density). The complementarity of a solid-state interaction model and kinetic plasma description provides deep insight into the interplay of initial ionization, collisions, and expansion.

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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
自引率
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发文量
803
审稿时长
2.1 months
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