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Selective photoionization of lithium isotopes in a hollow cathode lamp: a feasibility study for a laser ion source and detector

机译:中空阴极灯中锂同位素的选择性光化:激光离子源和检测器的可行性研究

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摘要

Two-step selective photoionization of lithium isotopes is carried out in a hollow cathode (HC) discharge lamp using a nitrogen-laser-pumped homemade tunable dye laser (similar to 0.2 cm(-1), 7 ns, 640-680 nm). The HC lamp is developed in-house and used as a lithium ion source as well as a detector. The dark space region of HC discharge is illuminated by a dye laser exciting pulse followed by an ionizing radiation from the nitrogen laser. The high electric field (AV/cm) present in HC dark space is exploited for fast charge collection, produced by the simultaneous interaction of exciting and ionizing laser beams with sputtered lithium atoms, enabling the detection of photoionization signal. Photoionization signals with a high signal-to-noise ratio are obtained without using any amplifier. Effects of the ionizing laser pulse energy and the precise tuning of the dye laser on lithium photoionization signal, across 670.780 nm (S-2(1/2) - P-2(1/2,3/2)) transition, are studied. The fine structure of lithium is clearly identified, and its two isotopes (Li-7(,6)) are fairly resolved in the measured photoionization spectrum. Using a saturation technique, the photoionization cross section and the number density of lithium atoms for the Li-7 (P-2(3/2)) excited level are also measured as 18.5 +/- 2.4 Mb, N-0 similar to 1.7 x 10(9) (atoms/cm(3)). The results obtained infer that HC-lamp-based photoionization is an easier and cost-effective way of selective photoionization of lithium atoms, and it can be applied for other elements also. (C) 2018 Optical Society of America
机译:使用氮激光泵浦的自制可调谐染料激光器(类似于0.2cm(-1),7ns,640-680nm),在中空阴极(HC)放电灯中进行两步选择性的光相。 HC灯在内部开发并用作锂离子源以及探测器。 HC放电的暗空间区域由染料激光激发脉冲照射,然后是来自氮激光的电离辐射。 HC暗空间中存在的高电场(AV / cm)被利用用于快速充电收集,通过激发和电离激光束与溅射锂原子的同时相互作用产生,从而能够检测光相消除信号。在不使用任何放大器的情况下获得具有高信噪比的光离子化信号。电离激光脉冲能量的效果和染料激光的精确调谐在670.780nm上的锂光离子化信号(S-2(1/2) - & p-2(1/2,3 / 2))过渡,研究过。清楚地鉴定了锂的精细结构,并且其两个同位素(Li-7(6))在测量的光离谱范围内相当分解。使用饱和技术,Li-7的光相横截面和锂原子的数量密度(p-2(3/2)激发水平也被测量为18.5 +/- 2.4 Mb,N-0类似于1.7 x 10(9)(原子/ cm(3))。得到的结果推断出基于HC灯的光相对于锂原子的选择性光相容易且成本高效的方式,也可以应用于其他元素。 (c)2018年光学学会

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  • 来源
    《Applied optics》 |2018年第23期|共9页
  • 作者

    Saini V. K.; Kak A.; Dixit S. K.;

  • 作者单位

    Raja Ramanna Ctr Adv Technol Fibre Sensors &

    Opt Spect Sect Indore 452013 Madhya Pradesh India;

    Raja Ramanna Ctr Adv Technol Laser Components Design &

    Fabricat Sect Indore 452013 Madhya Pradesh India;

    Raja Ramanna Ctr Adv Technol Fibre Sensors &

    Opt Spect Sect Indore 452013 Madhya Pradesh India;

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