激光器
等离子体
飞秒
吸收(声学)
激光线宽
吸光度
纳秒
原子物理学
激光诱导荧光
光谱学
发射光谱
荧光
化学
超快激光光谱学
荧光光谱法
分析化学(期刊)
材料科学
光学
谱线
物理
量子力学
色谱法
复合材料
天文
作者
S. S. Harilal,Elizabeth J. Kautz,R. Jason Jones,Mark C. Phillips
标识
DOI:10.1088/1361-6595/abefa5
摘要
Abstract We performed simultaneous measurement of absorption, emission, and laser-induced fluorescence spectroscopic signatures for determining nanosecond and femtosecond laser-produced plasma’s (LPP) physical properties throughout its lifecycle. Plasmas are produced by focusing either ∼6 ns, 1064 nm pulses from an Nd:YAG or ∼35 fs, ∼800 nm pulses from a Ti:sapphire laser on an Inconel target that contains Al as a minor alloying addition. A continuous-wave narrowband tunable laser was used for performing absorption and fluorescence spectroscopy while a fast-gated detection system was used for emission spectroscopy. The temporal evolution of emission, fluorescence, and absorbance of Al transitions are compared for both ns and fs LPPs. Time-resolved absorbance was also used for evaluating linewidth, lineshape, temperature, and column-averaged atomic number density at late times of ns and fs plasma evolution. Our results demonstrate that lower and excited-state populations of fs LPPs are short-lived in comparison to those in ns plasmas. The lower state population is observed to reach a maximum value earlier in time for the fs plasma versus the ns plasma, while the kinetic temperature for the ns plasma was higher than for the fs plasma at most times of the plasma evolution.
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