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Sensitivity improvement of solution cathode glow discharge-atomic emission spectrometry by using refrigerating anodes for optical determination of metal elements

机译:通过使用制冷阳极使用制冷阳极光学测定金属元素光纤测定溶液阴极辉光放电 - 原子发射光谱法的敏感性改进

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摘要

In this study, a refrigerating anode method was developed to improve solution cathode glow discharge-atomic emission spectrometry (SCGD-AES) for the determination of elements. Spectral characteristics of metal anodes at different temperatures were studied in the range from 10 to 30 °C. The spectral signals of metals were enhanced by reducing the metal anode temperature during the plasma discharge. Moreover, the method of the refrigerating anode improved the stability of spectral emission of metal elements. Compared with the unrefrigerated system under the same experimental conditions, the detection limits of Ag, Cd. Cu, Mn and Zn were 0.6, 9.1, 5.3, 8.7 and 16 μg L~(-1), respectively, which represented the improvements by 6.5, 3.5, 3.2, 3.9 and 3.1 times, respectively. The measurement results of Ag, Cd, Cu, Mn and Zn in a certified reference solution (BWB2446-2016) and an actual water sample from the Yangtze river by SCGD-AES with the refrigerating anode were in agreement with the reference values measured by ICP-OES. The water sample recovery from the Yangtze river ranged from 101.5 to 110.0%, suggesting that the measurement results exhibited high accuracy and reliability. All the results indicated that SCGD-AES coupled with a refrigerating anode could improve its analytical ability and provide an analytical method for in situ, real-time and on-line determination of metal elements in water samples.
机译:在该研究中,开发了一种冷藏阳极方法以改善溶液阴极辉光放电 - 原子发射光谱(SCGD-AES)以确定元件。在10至30℃的范围内研究了不同温度下的金属阳极的光谱特性。通过在等离子体放电期间降低金属阳极温度来提高金属的光谱信号。此外,制冷阳极的方法改善了金属元素光谱排放的稳定性。与在相同的实验条件下未异化的系统相比,AG,CD的检测限相比。 Cu,Mn和Zn分别为0.6,9.1,5.3,8.7和16μgL〜(-1),分别以6.5,3.5,3.2,3.9和3.1倍表示改善。银,镉,铜,锰,锌在经过认证的参比溶液(BWB2446-2016)和实际的水样从扬子江通过SCGD-AES与制冷阳极的测量结果与由ICP测量基准值一致-oes。从长江恢复的水样率为101.5至110.0%,表明测量结果表现出高精度和可靠性。所有结果表明,与制冷阳极相结合的SCGD-AE可以提高其分析能力,并提供用于水样中金属元素的实时和在线测定的分析方法。

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  • 来源
    《Journal of Analytical Atomic Spectrometry》 |2021年第6期|1228-1234|共7页
  • 作者单位

    College of Optoelectronic Engineering Chongqing University of Posts and Telecommunications Chongqing Municipal Level Key Laboratory of Photoelectronic Information Sensing and Transmitting Technology Chongqing 400065 P. R. China;

    College of Optoelectronic Engineering Chongqing University of Posts and Telecommunications Chongqing Municipal Level Key Laboratory of Photoelectronic Information Sensing and Transmitting Technology Chongqing 400065 P. R. China;

    College of Optoelectronic Engineering Chongqing University of Posts and Telecommunications Chongqing Municipal Level Key Laboratory of Photoelectronic Information Sensing and Transmitting Technology Chongqing 400065 P. R. China;

    College of Optoelectronic Engineering Chongqing University of Posts and Telecommunications Chongqing Municipal Level Key Laboratory of Photoelectronic Information Sensing and Transmitting Technology Chongqing 400065 P. R. China;

    College of Optoelectronic Engineering Chongqing University of Posts and Telecommunications Chongqing Municipal Level Key Laboratory of Photoelectronic Information Sensing and Transmitting Technology Chongqing 400065 P. R. China;

    College of Optoelectronic Engineering Chongqing University of Posts and Telecommunications Chongqing Municipal Level Key Laboratory of Photoelectronic Information Sensing and Transmitting Technology Chongqing 400065 P. R. China;

    College of Optoelectronic Engineering Chongqing University of Posts and Telecommunications Chongqing Municipal Level Key Laboratory of Photoelectronic Information Sensing and Transmitting Technology Chongqing 400065 P. R. China;

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