New inductively coupled plasma for atomic spectrometry: the microwave-sustained, inductively coupled, atmospheric-pressure plasma (MICAP)†

IF 3.1 2区 化学 Q2 CHEMISTRY, ANALYTICAL
Andrew J. Schwartz, Yan Cheung, Jovan Jevtic, Velibor Pikelja, Ashok Menon, Steven J. Ray and Gary M. Hieftje
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引用次数: 21

Abstract

A novel inductively coupled plasma (ICP), termed the microwave-sustained, inductively coupled, atmospheric-pressure plasma (MICAP), has been developed that operates at microwave frequency (2.45 GHz). To sustain the new plasma, a dielectric resonator ring (fabricated from an advanced technical ceramic) is coupled with a 2.45 GHz microwave field generated from a microwave-oven magnetron. The microwave field induces polarization currents (small shifts in the equilibrium positions of bound electrons) in the resonator that generate an orthogonal magnetic field, analogous to that produced by electrical current within a traditional ICP load coil. This magnetic field is capable of sustaining an annular plasma in either air or nitrogen that can readily accept solution samples in the form of a wet aerosol produced from a conventional nebulizer and a spray chamber. An initial analytical evaluation of the MICAP with radially viewed optical emission spectrometry (OES) revealed that limits of detection ranged from 0.03–70 ppb with relative standard deviations from 0.7–2.0%. In addition, the new plasma exhibited good tolerance to solvent loading, and was found to be capable of accepting a wide variety of organic solvents directly and salt solutions up to 3% w/w concentration. Combined, the results suggest that the MICAP could be a competitive, simpler alternative to traditional, radiofrequency argon ICP-OES.

Abstract Image

用于原子光谱的新型电感耦合等离子体:微波持续,电感耦合,大气压等离子体(MICAP)†
一种工作在微波频率(2.45 GHz)下的新型电感耦合等离子体(ICP)被称为微波持续、电感耦合、大气压等离子体(MICAP)。为了维持新的等离子体,一个介电谐振器环(由先进技术陶瓷制成)与一个由微波炉磁控管产生的2.45 GHz微波场耦合在一起。微波场在谐振器中诱导极化电流(束缚电子平衡位置的微小位移),产生正交磁场,类似于传统ICP负载线圈内电流产生的磁场。该磁场能够在空气或氮气中维持环状等离子体,可以很容易地接受由传统雾化器和喷雾室产生的湿气溶胶形式的溶液样品。对MICAP进行的初步分析评估显示,检测限为0.03-70 ppb,相对标准偏差为0.7-2.0%。此外,新型等离子体对溶剂负载表现出良好的耐受性,能够直接接受多种有机溶剂和高达3% w/w浓度的盐溶液。综上所述,结果表明MICAP可能是传统射频氩ICP-OES的一种更简单、更具竞争力的替代品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.20
自引率
26.50%
发文量
228
审稿时长
1.7 months
期刊介绍: Innovative research on the fundamental theory and application of spectrometric techniques.
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