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首页> 外文期刊>Spectrochimica Acta, Part B. Atomic Spectroscopy >Development and fundamental investigation of Laser Ablation Glow Discharge Time-Of-Flight Mass Spectrometry (LA-GD-TOFMS)
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Development and fundamental investigation of Laser Ablation Glow Discharge Time-Of-Flight Mass Spectrometry (LA-GD-TOFMS)

机译:激光烧蚀辉光放电飞行时间质谱仪(LA-GD-TOFMS)的开发和基础研究

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Glow Discharge (GD) spectroscopy is a well known and accepted technique for the bulk and surface composition analysis, while laser ablation (LA) provides analysis with high spatial-resolution analysis in UBS (laser-induced breakdown spectroscopy) or when coupled to inductively coupled plasma spectrometry (ICP-OES or 1CP-MS). This work concerns the construction of a Laser Ablation Glow Discharge Time-Of-Flight Mass Spectrometry (LA-GD-TOFMS) instrument to study the analytical capabilities resulting from the interaction of a laser-generated sample plume with a pulsed glow discharge. Two ablation configurations were studied in detail. In a first approach, the laser-generated plume was introduced directly into the GD, while the second approach generated the plume inside the GD. The ablated material was introduced at different times with respect to the discharge pulse in order to exploit the efficient ionization in the GD plasma. For both LA-GD configurations, direct ablation into the afterglow of the pulsed glow discharge leads to an ion signal enhancement of up to a factor of 7, as compared to the ablation process alone under the same experimental conditions. The LA-GD enhancement was found to occur exclusively in the GD afterglow, with a maximum ablation S/N occurring in a few hundred microseconds after the termination of the glow discharge. The duration of the enhanced signal is about two milliseconds. Both the laser pulse energy and the position of the ablation plume (with respect to the sampling orifice) were found to affect the amount of mass entering the afterglow region and consequently, the enhancement factor of ionization.
机译:辉光放电(GD)光谱是一种众所周知的公认的本体和表面成分分析技术,而激光烧蚀(LA)可以在UBS(激光诱导击穿光谱)中或与电感耦合耦合时提供具有高空间分辨率分析的分析等离子光谱法(ICP-OES或1CP-MS)。这项工作涉及激光烧蚀辉光放电飞行时间质谱(LA-GD-TOFMS)仪器的构造,以研究激光产生的样品羽流与脉冲辉光放电相互作用产生的分析能力。详细研究了两种消融配置。在第一种方法中,将激光生成的羽流直接引入GD,而第二种方法在GD内部生成羽流。相对于放电脉冲在不同的时间引入烧蚀的材料,以便利用GD等离子体中的有效电离。对于两种LA-GD配置,与在相同实验条件下单独进行消融过程相比,直接消融到脉冲辉光放电的余辉中会导致离子信号增强高达7倍。发现LA-GD增强仅在GD余辉中发生,在辉光放电终止后几百微秒内出现最大烧蚀S / N。增强信号的持续时间约为2毫秒。发现激光脉冲能量和消融羽流的位置(相对于采样孔)都会影响进入余辉区域的质量,从而影响电离的增强因子。

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