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Research Progress on Gas to Particle Conversion–Gas Exchange ICP-MS for Direct Analysis of Ultra-trace Metallic Compound Gas

机译:气体-颗粒转化-气体交换ICP-MS直接分析超痕量金属化合物气体的研究进展

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A novel gas to particle conversion–gas exchange technique coupled with inductively coupled plasma mass spectrometry (GPD-GED-ICP-MS) was recently proposed for the direct analysis of ultra-trace levels of metallic compound gases such as metal carbonyl and semiconductor gases as well as gaseous mercury (Hg) in ambient air. These metallic compound gases should reveal reactivity with respect to ozone and gas to particle conversion could be obtained in a gas to particle conversion device (GPD) through metal oxides by oxidation. The particles converted were separated from non-reactive gases such as nitrogen, oxygen, carbon dioxide in ambient air by a gas exchange device (GED) and the particles in argon, otherwise ICP cannot be maintained, were directly introduced and measured by ICP-MS. Since the technique detects the metallic compound gas directly without any sampling methods, it is expected to be applied to real-time monitoring. This article highlights the research progress and novelty on GPD-GED-ICP-MS for the direct analysis of ultra-trace metallic compound gas. It was also noted that the direct analysis of gaseous Hg at the concentration level of a few ng m~(?3) in ambient air mentioned in this article was world-first achieved by GPD-GED-ICP-MS. The research progress for multi-element analysis in suspended particulate matter by GED-ICP-MS was also mentioned since the GED was always used for GPD-GED-ICP-MS.
机译:最近,人们提出了一种新颖的气体-颗粒转化-气体交换技术与电感耦合等离子体质谱联用(GPD-GED-ICP-MS),用于直接分析痕量金属化合物气体,例如羰基金属和半导体气体。以及周围空气中的气态汞(Hg)。这些金属化合物气体应显示出与臭氧的反应性,并且可以在气体到颗粒转化装置(GPD)中通过氧化作用通过金属氧化物获得气体到颗粒的转化。通过气体交换装置(GED)将转化后的颗粒与周围空气中的非反应性气体(如氮气,氧气,二氧化碳)分离,然后将氩气中的颗粒保留下来,否则无法保持ICP,直接将其引入并通过ICP-MS测量。由于该技术无需任何采样方法即可直接检测金属化合物气体,因此有望将其应用于实时监测。本文重点介绍了直接分析超痕量金属化合物气体的GPD-GED-ICP-MS的研究进展和新颖性。还应注意的是,本文中提到的GPD-GED-ICP-MS在环境空气中直接分析气态Hg的浓度水平仅为几ng m〜(?3)。由于GED一直用于GPD-GED-ICP-MS,因此还提到了通过GED-ICP-MS对悬浮颗粒物进行多元素分析的研究进展。

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