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Laser-produced X-ray sources

机译:激光产生的X射线源

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摘要

A formidable array of advanced laser systems are emerging that produce extreme states of light and matter. By irradiating solid and gaseous targets with lasers of increasing energy densities, new physical regimes of radiation effects are being explored for the first time in controlled laboratory settings. One result that is being accomplished or pursued using a variety of techniques, is the realization of novel sources of X-rays with unprecedented characteristics and light-matter interactions, the mechanisms of which are in many cases still being elucidated. Examples include the megajoule class of laser-produced plasmas designed in pursuit of alternative-energy and security applications and the petawatt class of lasers used for fast ignition and X-ray radiographic applications such as medical imaging and real-time imaging of plasma hydrodynamics. As these technologies mature, increased emphasis will need to be placed on advanced instrumentation and diagnostic metrology to characterize the spectra, time structure, and absolute brightness of X-rays emitted by these unconventional sources. Such customized and absolutely calibrated measurement tools will serve as an enabling technology that can help in assessing the overall system performance and progress, as well as identification of the underlying interaction mechanisms of interest to basic and applied strong-field and high-energy-density science.
机译:大量的先进激光系统正在出现,它们会产生极端的光和物质状态。通过用增加能量密度的激光照射固体和气体目标,在受控的实验室环境中首次探索了新的辐射效应物理机制。使用多种技术可以实现或追求的一个结果是,实现了具有空前特性和光-物质相互作用的新型X射线源,但在许多情况下其机理仍在阐明中。例子包括为追求替代能源和安全性应用而设计的兆焦级激光产生等离子体,以及用于快速点火和X射线射线照相应用(例如医学成像和等离子体流体动力学实时成像)的PB级激光。随着这些技术的成熟,将需要把更多的重点放在先进的仪器和诊断计量学上,以表征由这些非常规光源发出的光谱,时间结构和X射线的绝对亮度。这种定制且经过绝对校准的测量工具将成为一项使能技术,可以帮助评估整体系统性能和进步,以及确定基础和应用的强场和高能量密度科学感兴趣的潜在相互作用机制。 。

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