利用飞秒 X 射线 FEL 脉冲在 LiF 晶体中形成高光谱比纳米腔

Sergey S. Makarov, Sergey A. Grigoryev, Vasily V. Zhakhovsky, Petr Chuprov, Tatiana A. Pikuz, Nail A. Inogamov, Victor V. Khokhlov, Yuri V. Petrov, Eugene Perov, Vadim Shepelev, Takehisa Shobu, Aki Tominaga, Ludovic Rapp, Andrei V. Rode, Saulius Juodkazis, Mikako Makita, Motoaki Nakatsutsumi, Thomas R. Preston, Karen Appel, Zuzana Konopkova, Valerio Cerantola, Erik Brambrink, Jan-Patrick Schwinkendorf, István Mohacsi, Vojtech Vozda, Vera Hajkova, Tomas Burian, Jaromir Chalupsky, Libor Juha, Norimasa Ozaki, Ryosuke Kodama, Ulf Zastrau, Sergey A. Pikuz
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引用次数: 0

摘要

金属的亚皮秒光学激光加工主要用于加热表面层的改性。但要对不同材料进行更深层次的改性,则需要硬 X 射线范围内的激光。在这里,我们证明了来自自由电子激光器的单个 9-keV X 射线脉冲可以在被冲击转化材料包围的 LiF 中形成一个直径为 um、长度为 ~1 mm 的圆柱形空腔。等离子体产生的具有 TPa 级压力的冲击波可导致任何材料的损坏、熔化和多晶体转变,包括对传统光学激光器透明和不透明的材料。此外,利用圆柱形冲击波还可以获得大量奇特的高压多晶体。通过连续和原子模拟分析了 LiF 中的压力波传播、径向材料流动、裂缝和空隙的形成,揭示了导致最终形成长空腔结构的一系列过程。半导体和陶瓷也能产生类似的结果,这为利用硬 X 射线脉冲进行激光材料加工的发展开辟了一条新途径。
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Formation of high-aspect-ratio nanocavity in LiF crystal using a femtosecond of x-ray FEL pulse
Sub-picosecond optical laser processing of metals is actively utilized for modification of a heated surface layer. But for deeper modification of different materials a laser in the hard x-ray range is required. Here, we demonstrate that a single 9-keV x-ray pulse from a free-electron laser can form a um-diameter cylindrical cavity with length of ~1 mm in LiF surrounded by shock-transformed material. The plasma-generated shock wave with TPa-level pressure results in damage, melting and polymorphic transformations of any material, including transparent and non-transparent to conventional optical lasers. Moreover, cylindrical shocks can be utilized to obtain a considerable amount of exotic high-pressure polymorphs. Pressure wave propagation in LiF, radial material flow, formation of cracks and voids are analyzed via continuum and atomistic simulations revealing a sequence of processes leading to the final structure with the long cavity. Similar results can be produced with semiconductors and ceramics, which opens a new pathway for development of laser material processing with hard x-ray pulses.
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