论文标题

激光生产的等离子体的光学诊断

Optical diagnostics of laser-produced plasmas

论文作者

Harilal, S. S., Phillips, M. C., Froula, D. H., Anoop, K. K., Issac, R. C., Beg, F. N.

论文摘要

激光生产的等离子体(LPP)吞噬了外来和复杂条件,其温度,密度,压力,磁场和电场,电荷状态,带电的颗粒动力学以及基于辐照条件,靶标几何形状和背景覆盖气体的气体动力学和气相反应。 LPP的应用潜力是如此多样化,以至于它对基本研究领域和应用研究领域都产生了极大的兴趣。尽管大多数用于其他等离子体源开发的传统特征技术可用于表征LPP,但由于其尺寸较小,瞬态性质和不均匀性,必须注意解释结果。较大的时空密度和温度梯度的存在通常需要在距离和时间上平均平均平均。在各种血浆表征工具中,基于光学的诊断工具在LPP参数的准确测量中起关键作用。光学工具箱包含光学探测方法(Thomson散射,Shadowgraphy,Schlieren,干涉法,速度测定法和挠度测定法),光谱法(发射,吸收和荧光)以及被动和主动成像。每种技术对于测量特定属性都是有用的,由于与所选测量工具有关的灵敏度问题,其使用限于LPP演化期间的一定时间跨度。因此,多种诊断工具对于全面了解整个血浆行为至关重要。近来,激光和检测器系统的性能的改善扩大了上述被动和主动诊断工具的能力。这篇评论提供了经常用于表征LPP的光学诊断工具的概述,并强调技术,相关的假设和挑战。

Laser-produced plasmas (LPPs) engulf exotic and complex conditions ranging in temperature, density, pressure, magnetic and electric fields, charge states, charged particle kinetics, and gas-phase reactions, based on the irradiation conditions, target geometries, and the background cover gas. The application potential of the LPP is so diverse that it generates considerable interest for both basic and applied research areas. Although most of the traditional characterization techniques developed for other plasma sources can be used to characterize the LPPs, care must be taken to interpret the results because of their small size, transient nature, and inhomogeneities. The existence of the large spatiotemporal density and temperature gradients often necessitates non-uniform weighted averaging over distance and time. Among the various plasma characterization tools, optical-based diagnostic tools play a key role in the accurate measurements of LPP parameters. The optical toolbox contains optical probing methods (Thomson scattering, shadowgraphy, Schlieren, interferometry, velocimetry, and deflectometry), optical spectroscopy (emission, absorption, and fluorescence), and passive and active imaging. Each technique is useful for measuring a specific property, and its use is limited to a certain time span during the LPP evolution because of the sensitivity issues related to the selected measuring tool. Therefore, multiple diagnostic tools are essential for a comprehensive insight into the entire plasma behavior. In recent times, the improvements in performance in the lasers and detector systems expanded the capability of the aforementioned passive and active diagnostics tools. This review provides an overview of optical diagnostic tools frequently employed for the characterization of the LPPs and emphasizes techniques, associated assumptions, and challenges.

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