Schwarzschild microscope at λ =7 nm

K. Tanaka, M. Kado, H. Daido, T. Yamanaka, S. Nakai, K. Yamashita, S. Kitamoto
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Abstract

X-ray imaging optics have been essential diagnostics in inertial confinement fusion (ICF) research. A micro pellet (<1mm dia.) is irradiated by a giant multi-beam laser system. This pellet is imploded to create a thermonuclear fusion condition, making use of the inertia of the imploding pellet wall. It is of critical importance for ICF to measure nonuniformities at the implosion core(~ 100μm) or the laser spot in order to drive the pellet to a very high density. Such measurements require a spatial resolution of less than 1μm. We have chosen to build a Schwarzschild type x-ray microscope with a magnification of 15. This x-ray microscope can be applied to fields other than laser fusion, such as lithography, biology’ and medicine. This can be a powerful tool when coupled with laser plasma x rays(LAPLAX), since the high brightness and temporal resolution (<1ns) of LAPLAX is added to the high spatial resolution.
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施瓦西显微镜在λ =7 nm
在惯性约束聚变(ICF)研究中,x射线成像光学已成为必不可少的诊断手段。用一个巨大的多光束激光系统照射直径小于1mm的微球。利用内爆球壁的惯性,这个球团被内爆以创造一个热核融合的条件。测量内爆核心(~ 100μm)或激光光斑处的非均匀性对于驱动颗粒达到非常高的密度至关重要。此类测量要求的空间分辨率小于1μm。我们选择建造一台史瓦西型x射线显微镜,放大倍数为15倍。这种x射线显微镜可以应用于激光聚变以外的领域,如光刻、生物学和医学。当与激光等离子体x射线(LAPLAX)相结合时,它可以成为一个强大的工具,因为LAPLAX的高亮度和时间分辨率(<1ns)增加了高空间分辨率。
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