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Atomic spectrometry update: review of advances in atomic spectrometry and related techniques

机译:原子光谱更新:审查原子光谱和相关技术的进步

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摘要

This review of 177 references covers developments in 'Atomic Spectrometry' published in the twelve months from November 2019 to November 2020 inclusive. It covers atomic emission, absorption, fluorescence and mass spectrometry, but excludes material on speciation and coupled techniques which is included in a separate review. It should be read in conjunction with the previous review1 and the other related reviews in the series.~(2-6) A critical approach to the selection of material has been adopted, with only novel developments in instrumentation, techniques and methodology being included. The analysis of nanoparticles is of current interest, with several novel developments in single particle ICP-MS methods of analysis. Nanoparticles have also been used extensively for elemental tagging to determine proteins and biomarkers, which is now becoming a routine method. Matrix effects in ICP-MS have come under scrutiny, with several studies pointing to a re-evaluation of space charge effects in instruments with newer designs of ion lenses. The DBD, and similar miniature plasma sources, are becoming increasingly popular in compact portable instruments, and for vapour generation and trapping. Developments in laser-based spectroscopy have slowed somewhat, but there were some novel developments in double-pulse and microwave assisted LIBS. Data treatment is one area which looks to be attracting some attention, particularly ways to reduce the huge LIBS dataset to a manageable size for processing. Methods of analysing isotopes continued to be refined using high-impedance resistors, but also with the development of ATONA-based Faraday collectors (ato-to nano- Amp detection) in certain instruments. There were also a number of studies utilising chemical reaction cells to remove isobaric interferences and reduce scatter: a development that will continue to smooth a path towards high precision isotope ratios from vanishingly small amounts of analyte. Double spiking continued to be the mass fractionation correction method of choice in a variety of stable isotope, radiogenic isotope and nuclear environmental applications.
机译:该综述关于177参考文献涵盖了2019年11月至11月20日十二个月发表的“原子光谱法”的发展。它涵盖了原子发射,吸收,荧光和质谱法,但排除了物种和偶联技术的材料,该技术包括在单独的审查中。它应该与上一篇的评论1以及该系列中的其他相关审查相结合。〜(2-6)采用了一种批判性材料的批判方法,只有新颖的仪器,技术和方法中的开发。纳米颗粒的分析是目前的兴趣,单粒子ICP-MS分析方法具有几种新的发育。纳米粒子也已广泛用于元素标记以确定蛋白质和生物标志物,其现在成为常规方法。 ICP-MS中的矩阵效应已经受到审查,其中几项研究指向具有较新设计的离子镜头的仪器中的空间收取效应的重新评估。 DBD和类似的微型等离子体源在紧凑型便携式仪器中越来越受欢迎,以及蒸气产生和捕获。基于激光的光谱学的开发略微放缓,但双脉冲和微波辅助LIBS存在一些新的开发。数据处理是一个视图引起一些关注的一个领域,特别是将巨大的Libs数据集减少到可管理大小以进行处理。分析同位素的方法继续使用高阻抗电阻改装,而且随着某些仪器中的基于ATONA的法拉第收集器(ATO至纳米AMP检测)的发展。还有许多研究利用化学反应细胞去除异常干扰并减少散射:将继续平滑朝向高精度同位素比从缺失的少量分析物的发展的发展。双重尖峰继续成为各种稳定同位素,辐射同位素和核环境应用中的群众分馏校正方法。

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  • 来源
    《Journal of Analytical Atomic Spectrometry》 |2021年第5期|868-891|共24页
  • 作者单位

    The Open University UK;

    University of Oviedo Faculty of Science Department of Physics c/ Calvo Sotelo s/n 33006 Oviedo Spain;

    School of Education College of Social Sciences University of Glasgow University Avenue Glasgow G12 8QQ UK;

    School of Ocean and Earth Science University of Southampton NOC Southampton SO14 3ZH UK;

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