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首页> 外文期刊>Spectrochimica Acta, Part B. Atomic Spectroscopy >Determination of Co, Cr, Mn and Ni traces in fluorine containing materials for optical fibers using laser enhanced ionisation techniques with flame and rod-flame atomizers
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Determination of Co, Cr, Mn and Ni traces in fluorine containing materials for optical fibers using laser enhanced ionisation techniques with flame and rod-flame atomizers

机译:使用火焰和棒火焰雾化器的激光增强电离技术测定光纤含氟材料中的痕量Co,Cr,Mn和Ni

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摘要

Two fluorine-containing materials (NH_4F and NaF) for optical fiber production have been analyzed with respect ta their contents of Co, Cr, Mn and Ni using two different laser enhanced iomzation (LEI) techniques, one using a rod-flame as an atomization-ionization system and one using a flame as the atomizer One advantage of the rod-flame system is that it can separate the evaporation and atomization steps which thereby leads to a reduction of the influences of matrices Another advantage is that it can be used for analysis of both solid and liquid samples The NH_4F sample was analyzed as a solid and also as a solution (dissolved to 50 or 100 g/1 in water) In the flame atomizer the NH_4F matrix created a non-selective ionization background giving detection limits in the order of tens of ng/g (concentrations in the solid sample) Using the rod-flame system, however, it was found that Cr, Mn, and Ni could be determined in the NH_4F sample down to a few ng/g by analysis of the sample solutions without any need for pre-concentration procedures Direct analysis of solid samples, without any sample preparation, could also be done using the rod-flame system with a ten-fold improvement in detectability. The detection limits for analysis of the solid samples were estimated to be the following: Co, 1 ng/g; Cr, 0.2 ng/g; Mn, 0 3 ng/g, and Ni, 0 08 ng/g. The NaF sample was more complicated to analyze When using the flame, a significant ionization background was obtained even for solutions diluted down to 0.2 g/1. However, using the rod-flame system, analysis of the elemental content of the NaF sample could be performed Detection limits in the range of tens of ng/g could be obtained from diluted solutions (≤20 g/1). It was found that the NH_4F and NaF materialcontained the following concentrations of impurities (HN_4F: Cr. 70 ± 5 ng/g; Mn, 88 ± 6 ng/ g; and Ni, 56 ± 5 ng/g NaF: Cr, 290 ± 70 ng/g; Mn, 40 ± 15 ng/g; and Ni 2200 ± 400 ng/g) For the case of Co, only an upper limit could be assessed (<1 ng/g for NH_4F and <70 ng/g for NaF).
机译:使用两种不同的激光增强碘化技术(LEI)分析了两种用于光纤生产的含氟材料(NH_4F和NaF)的Co,Cr,Mn和Ni含量,其中一种使用棒火焰作为雾化剂。 -电离系统和使用火焰作为雾化器的系统-棒-火焰系统的一个优点是它可以分离蒸发和雾化步骤,从而减少了基质的影响。另一个优点是,它可以用于分析固体和液体样品均以固体和溶液形式分析NH_4F样品(在水中溶解至50或100 g / 1)在火焰雾化器中,NH_4F基质产生了非选择性电离背景,从而在几十ng / g的量级(固体样品中的浓度),但是,使用棒火焰系统,通过分析NH_4F样品,可以确定低至几ng / g的Cr,Mn和Ni。样品溶液ns无需任何预浓缩程序,无需进行任何样品前处理即可直接对固体样品进行分析,而使用棒-火焰系统可将检测能力提高十倍。估计固体样品的分析检出限为:Co,1 ng / g;铬0.2 ng / g; Mn为0 3 ng / g,Ni为0 08 ng / g。 NaF样品的分析更为复杂。使用火焰时,即使稀释至0.2 g / 1的溶液也可获得明显的电离背景。但是,使用棒燃烧系统可以分析NaF样品中的元素含量。从稀释溶液(≤20g / 1)可以得到数十ng / g的检测限。已发现NH_4F和NaF材料包含以下杂质浓度(HN_4F:Cr。70±5 ng / g; Mn,88±6 ng / g; Ni,56±5 ng / g NaF:Cr,290± 70 ng / g; Mn 40±15 ng / g; Ni 2200±400 ng / g)对于Co,只能评估上限(NH_4F <1 ng / g,<70 ng / g NaF)。

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