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用于氩氦微波诱导等离子体光发射光谱分析的浆料微量进样技术

Slurry micro-sampling technique for use in argon-helium microwave induced plasma optical emission spectrometry.

作者信息

Ślachciński Mariusz

机构信息

Poznan University of Technology, Faculty of Chemical Technology, Berdychowo 4, 60-965 Poznan, Poland.

出版信息

Talanta. 2016 Dec 1;161:812-818. doi: 10.1016/j.talanta.2016.09.043. Epub 2016 Sep 16.

Abstract

The Flow Focusing Pneumatic Nebulizer (FFPN) working at low liquid flow rates was evaluated for the elemental analysis in slurried samples by argon-helium microwave induced plasma optical emission spectrometry (MIP-OES). The obtained results achieved were compared with commercially available V-groove Babington type nebulizer (VBPN). A univariate approach and the simplex optimization procedure were used to achieve optimized conditions and derive analytical figures of merit. Analytical performance of the micro nebulization system was characterized by a determination of the limits of detection (LODs), the precision (RSDs) and the wash-out times for Ba, Ca, Cd, Cu, Fe, Mg, Mn, Pb and Sr. The experimental concentration detection limits for simultaneous determination, calculated as the concentration giving a signal equal to three times of the standard deviation of the blank (LOD, 3σ criterion, peak height) were 0.9, 0.2, 0.3, 0.2, 0.3, 0.1, 0.2, 0.4, 0.4 and 0.3ngmL for Ba, Ca, Cd, Cu, Fe, Mg, Mn, Pb and Sr, respectively. The method offers relatively good precision (RSD ranged from 5% to 8%) for micro-slurry sampling analysis. Analyses of the certified reference materials (NRCC DOLT-2, GBW 07302 and SRM 2710) were performed in order to determine the accuracy available with the presented nebulization systems. The measured contents of elements in the reference materials were in satisfactory agreement with the certified values. In addition, these elements were determined in two real samples. Slurry concentration up to 3% m/v (particles <20μm), prepared in 10% m/v HCl through the application of ultrasonic agitation, was used with calibration by the standard addition technique. An ultrasonic probe was used to homogenize the slurry in the polypropylene bottle just before its introduction into the nebulizer. The nebulizers exhibited no clogging problems.

摘要

采用氩 - 氦微波诱导等离子体发射光谱法(MIP - OES),对在低液体流速下工作的流动聚焦气动雾化器(FFPN)进行了评价,用于分析悬浮液样品中的元素。将获得的结果与市售的V型槽巴宾顿式雾化器(VBPN)进行了比较。采用单变量方法和单纯形优化程序来实现优化条件并得出分析性能指标。通过测定Ba、Ca、Cd、Cu、Fe、Mg、Mn、Pb和Sr的检测限(LOD)、精密度(RSD)和冲洗时间,对微雾化系统的分析性能进行了表征。同时测定的实验浓度检测限,按照产生的信号等于空白标准偏差三倍的浓度计算(LOD,3σ标准,峰高),Ba、Ca、Cd、Cu、Fe、Mg、Mn、Pb和Sr分别为0.9、0.2、0.3、0.2、0.3、0.1、0.2、0.4、0.4和0.3 ng/mL。该方法对微悬浮液采样分析具有相对较好的精密度(RSD范围为5%至8%)。为了确定所提出的雾化系统的准确性,对有证标准物质(NRCC DOLT - 2、GBW 07302和SRM 2710)进行了分析。标准物质中元素的测定含量与认定值令人满意地一致。此外,还对两个实际样品中的这些元素进行了测定。通过超声搅拌在10% m/v HCl中制备的高达3% m/v(颗粒<20μm)的悬浮液浓度,采用标准加入技术进行校准。在将悬浮液引入雾化器之前,使用超声探头在聚丙烯瓶中使悬浮液均匀化。雾化器未出现堵塞问题。

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