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通过X射线自由电子激光实现的固体密度物质中快速电子加热的时空动力学

Spatiotemporal dynamics of fast electron heating in solid-density matter via XFEL.

作者信息

Sawada H, Yabuuchi T, Higashi N, Iwasaki T, Kawasaki K, Maeda Y, Izumi T, Nakagawa Y, Shigemori K, Sakawa Y, Curry C B, Frost M, Iwata N, Ogitsu T, Sueda K, Togashi T, Hu S X, Glenzer S H, Kemp A J, Ping Y, Sentoku Y

机构信息

Department of Physics, University of Nevada, Reno, Reno, NV, USA.

Japan Synchrotron Radiation Research Institute, Hyogo, Japan.

出版信息

Nat Commun. 2024 Sep 5;15(1):7528. doi: 10.1038/s41467-024-51084-4.

Abstract

High-intensity, short-pulse lasers are crucial for generating energetic electrons that produce high-energy-density (HED) states in matter, offering potential applications in igniting dense fusion fuels for fast ignition laser fusion. High-density targets heated by these electrons exhibit spatially non-uniform and highly transient conditions, which have been challenging to characterize due to limitations in diagnostics that provide simultaneous high spatial and temporal resolution. Here, we employ an X-ray Free Electron Laser (XFEL) to achieve spatiotemporally resolved measurements at sub-micron and femtosecond scales on a solid-density copper foil heated by laser-driven fast electrons. Our X-ray transmission imaging reveals the formation of a solid-density hot plasma localized to the laser spot size, surrounded by Fermi degenerate, warm dense matter within a picosecond, and the energy relaxation occurring within the hot plasma over tens of picoseconds. These results validate 2D particle-in-cell simulations incorporating atomic processes and provide insights into the energy transfer mechanisms beyond current simulation capabilities. This work significantly advances our understanding of rapid fast electron heating and energy relaxation in solid-density matter, serving as a key stepping stone towards efficient high-density plasma heating and furthering the fields of HED science and inertial fusion energy research using intense, short-pulse lasers.

摘要

高强度短脉冲激光对于产生能在物质中产生高能量密度(HED)状态的高能电子至关重要,这为快速点火激光核聚变中点燃高密度聚变燃料提供了潜在应用。由这些电子加热的高密度靶呈现出空间上不均匀且高度瞬态的状态,由于诊断技术在提供同时的高空间和时间分辨率方面存在局限性,对其进行表征一直具有挑战性。在此,我们利用X射线自由电子激光(XFEL)在由激光驱动的快电子加热的固体密度铜箔上,实现了亚微米和飞秒尺度上的时空分辨测量。我们的X射线透射成像揭示了在皮秒内形成了局限于激光光斑尺寸的固体密度热等离子体,其周围是费米简并的温稠密物质,并且热等离子体在数十皮秒内发生能量弛豫。这些结果验证了包含原子过程的二维粒子模拟,并为超出当前模拟能力的能量转移机制提供了见解。这项工作极大地推进了我们对固体密度物质中快速快电子加热和能量弛豫的理解,是迈向高效高密度等离子体加热的关键一步,并推动了使用高强度短脉冲激光的HED科学和惯性聚变能源研究领域的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/13d4/11377781/dde58230881d/41467_2024_51084_Fig1_HTML.jpg

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