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首页> 外文期刊>Scientific reports. >Standoff Detection of Uranium and its Isotopes by Femtosecond Filament Laser Ablation Molecular Isotopic Spectrometry
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Standoff Detection of Uranium and its Isotopes by Femtosecond Filament Laser Ablation Molecular Isotopic Spectrometry

机译:飞秒丝激光烧蚀分子同位素光谱法的铀及其同位素的转速检测

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摘要

The ability to perform not only elementally but also isotopically sensitive detection and analysis at standoff distances is impor-tant for remote sensing applications in diverse ares, such as nuclear nonproliferation, environmental monitoring, geophysics, and planetary science. We demonstrate isotopically sensitive real-time standoff detection of uranium by the use of femtosecond filament-induced laser ablation molecular isotopic spectrometry. A uranium oxide molecular emission isotope shift of 0.05?±?0.007?nm is reported at 593.6?nm. We implement both spectroscopic and acoustic diagnostics to characterize the properties of uranium plasma generated at different filament-uranium interaction points. The resulting uranium oxide emis-sion exhibits a nearly constant signal-to-background ratio over the length of the filament, unlike the uranium atomic and ionic emission, for which the signal-to-background ratio varies significantly along the filament propagation. This is explained by the different rates of increase of plasma density and uranium oxide density along the filament length resulting from spectral and temporal evolution of the filament along its propagation. The results provide a basis for the optimal use of filaments for standoff detection and analysis of uranium isotopes and indicate the potential of the technique for a wider range of remote sensing applications that require isotopic sensitivity.
机译:在宿舍距离中不仅进行基本而且同位性敏感的检测和分析的能力对于各种各样的ARE中的​​遥感应用,例如核不扩散,环境监测,地球物理和行星科学等强度。我们通过使用飞秒细丝诱导的激光烧蚀分子同位素光谱法展示了铀的同位素敏感的实时支架检测。氧化铀分子发射同位素偏移为0.05≤00?±0.007μmΩ·Nm。我们实施光谱和声学诊断,以表征在不同丝 - 铀相互作用点处产生的铀等离子体的性质。与铀原子和离子发射不同,所得氧化铀Emis-sion在长丝的长度上表现出几乎恒定的信号 - 背景比,与铀原子和离子发射不同,信号 - 背景比沿着灯丝传播变化显着变化。这是通过沿着长丝沿其繁殖的丝丝长度沿着长丝长度的血管密度和氧化铀酰基密度的不同速率解释。结果为铀同位素的宿舍检测和分析提供了大丝的最佳用途,并指出了需要同位素敏感性的更广泛遥感应用的技术的潜力。

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