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用于汞的光腔衰荡测量的替代等离子体源的开发。

Development of alternative plasma sources for cavity ring-down measurements of mercury.

作者信息

Duan Yixiang, Wang Chuji, Scherrer Susan T, Winstead Christopher B

机构信息

C-CSE, MS K484, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.

出版信息

Anal Chem. 2005 Aug 1;77(15):4883-9. doi: 10.1021/ac050704x.

Abstract

We have been exploring innovative technologies for elemental and hyperfine structure measurements using cavity ring-down spectroscopy (CRDS) combined with various plasma sources. A laboratory CRDS system utilizing a tunable dye laser is employed in this work to demonstrate the feasibility of the technology. An in-house fabricated sampling system is used to generate aerosols from solution samples and introduce the aerosols into the plasma source. The ring-down signals are monitored using a photomultiplier tube and recorded using a digital oscilloscope interfaced to a computer. Several microwave plasma discharge devices are tested for mercury CRDS measurement. Various discharge tubes have been designed and tested to reduce background interference and increase the sample path length while still controlling turbulence generated from the plasma gas flow. Significant background reduction has been achieved with the implementation of the newly designed tube-shaped plasma devices, which has resulted in a detection limit of 0.4 ng/mL for mercury with the plasma source CRDS. The calibration curves obtained in this work readily show that linearity over 2 orders of magnitude can be obtained with plasma-CRDS for mercury detection. In this work, the hyperfine structure of mercury at the experimental plasma temperatures is clearly identified. We expect that plasma source cavity ring-down spectroscopy will provide enhanced capabilities for elemental and isotopic measurements.

摘要

我们一直在探索利用光腔衰荡光谱(CRDS)结合各种等离子体源进行元素和超精细结构测量的创新技术。在这项工作中,采用了一个利用可调谐染料激光器的实验室CRDS系统来证明该技术的可行性。使用一个内部制造的采样系统从溶液样品中产生气溶胶,并将气溶胶引入等离子体源。使用光电倍增管监测衰荡信号,并使用与计算机相连的数字示波器进行记录。测试了几种微波等离子体放电装置用于汞的CRDS测量。设计并测试了各种放电管,以减少背景干扰并增加样品路径长度,同时仍能控制等离子体气流产生的湍流。新设计的管状等离子体装置的实施显著降低了背景,使用等离子体源CRDS对汞的检测限达到了0.4 ng/mL。在这项工作中获得的校准曲线清楚地表明,使用等离子体 - CRDS进行汞检测时,在2个数量级范围内可获得线性关系。在这项工作中,清楚地识别了实验等离子体温度下汞的超精细结构。我们期望等离子体源光腔衰荡光谱将为元素和同位素测量提供增强的能力。

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