Wroclaw University of Science and Technology, Faculty of Chemistry, Division of Analytical Chemistry and Chemical Metallurgy, Wybrzeze Stanislawa Wyspianskiego 27, 50-370, Wroclaw, Poland.
Wroclaw University of Science and Technology, Faculty of Chemistry, Division of Analytical Chemistry and Chemical Metallurgy, Wybrzeze Stanislawa Wyspianskiego 27, 50-370, Wroclaw, Poland.
Talanta. 2021 Jan 15;222:121510. doi: 10.1016/j.talanta.2020.121510. Epub 2020 Aug 7.
A novel atmospheric pressure glow discharge (APGD) microplasma system, sustained between a miniaturized flowing liquid anode (FLA) and a He jet nozzle cathode, was combined with a hydride generation (HG) technique to improve the determination performance of As, Bi, Hg, Sb, and Se with the aid of optical emission spectrometry (OES). The discharge current, the He flow rate, and the concentrations of HCl and NaBH were considered to affect both the HG reaction and the excitation conditions in the discharge, thus they were thoroughly studied. Under the optimized conditions, the detections limits (LODs), assessed on the basis of the 3σ criterion, reached 1.7, 0.85, 0.04, 0.51, and 2.9 μg L for As, Bi, Hg, Sb, and Se, respectively. The HG and transport efficiency for these elements was evaluated to be 88-100%, which is notably better, as compared to their transport efficiency in the conventional FLA-APGD system, without the HG technique. This yielded an improvement of the LODs achievable in this system and, simultaneously, enabled to determine As, Sb, and Se at a level, which is unobtainable with the use of the FLA-APGD system alone. The proposed methodology was then successfully applied for a quantitative determination of the examined elements in wastewater (ERM-CA713) and spiked water samples. The recoveries of the elements added to these waters (at the maximum acceptable levels in drinking water set by the U.S. Environmental Protection Agency) ranged between 81 and 104%, confirming the excellent accuracy, usefulness, and reliability of the developed HG-FLA-APGD technique.
一种新颖的大气压辉光放电(APGD)微等离子体系统,由微型流动液体阳极(FLA)和氦气射流喷嘴阴极维持,与氢化物发生(HG)技术相结合,借助于光学发射光谱法(OES)提高了 As、Bi、Hg、Sb 和 Se 的测定性能。放电电流、氦气流速以及 HCl 和 NaBH 的浓度被认为会影响 HG 反应和放电中的激发条件,因此对它们进行了深入研究。在优化条件下,基于 3σ 准则评估的检出限(LOD)分别达到 1.7、0.85、0.04、0.51 和 2.9μg/L 对于 As、Bi、Hg、Sb 和 Se。评估这些元素的 HG 和传输效率为 88-100%,与没有 HG 技术的传统 FLA-APGD 系统相比,这明显更好。这提高了该系统可实现的 LOD,并同时使在单独使用 FLA-APGD 系统无法达到的水平下能够测定 As、Sb 和 Se。然后,将所提出的方法成功应用于废水(ERM-CA713)和加标水样中这些元素的定量测定。添加到这些水中的元素的回收率(在饮用水中由美国环境保护署设定的最大可接受水平内)在 81%至 104%之间,证实了开发的 HG-FLA-APGD 技术具有出色的准确性、有用性和可靠性。