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Interferometric analysis of laser-driven cylindrically focusing shock waves in a thin liquid layer

机译:激光驱动圆柱形聚焦激波在薄液层中的干涉分析

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摘要

Shock waves in condensed matter are of great importance for many areas of science and technology ranging from inertially confined fusion to planetary science and medicine. In laboratory studies of shock waves, there is a need in developing diagnostic techniques capable of measuring parameters of materials under shock with high spatial resolution. Here, time-resolved interferometric imaging is used to study laser-driven focusing shock waves in a thin liquid layer in an all-optical experiment. Shock waves are generated in a 10 µm-thick layer of water by focusing intense picosecond laser pulses into a ring of 95 µm radius. Using a Mach-Zehnder interferometer and time-delayed femtosecond laser pulses, we obtain a series of images tracing the shock wave as it converges at the center of the ring before reemerging as a diverging shock, resulting in the formation of a cavitation bubble. Through quantitative analysis of the interferograms, density profiles of shocked samples are extracted. The experimental geometry used in our study opens prospects for spatially resolved spectroscopic studies of materials under shock compression.
机译:从惯性约束聚变到行星科学和医学,凝聚态物质中的冲击波对科学和技术的许多领域都至关重要。在冲击波的实验室研究中,需要开发能够以高空间分辨率测量冲击下的材料参数的诊断技术。在这里,时间分辨干涉成像用于在全光学实验中研究薄液层中激光驱动的聚焦冲击波。通过将皮秒级的强烈激光脉冲聚焦到半径为95μm的环中,在10μm厚的水层中会产生冲击波。使用Mach-Zehnder干涉仪和延时的飞秒激光脉冲,我们获得了一系列跟踪冲击波的图像,该冲击波在环的中心会聚,然后重新扩散为发散的冲击,从而导致形成空化气泡。通过对干涉图的定量分析,提取了冲击样品的密度分布。在我们的研究中使用的实验几何学为材料在冲击压缩下的空间分辨光谱研究开辟了前景。

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