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Larmor Precession: Observation and Utilization for Boosting the Signal Intensity of Radio Frequency Glow Discharge Mass Spectrometry

机译:LARMOR PREASION:促进射频发光放电质谱法的信号强度的观察和利用

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摘要

A novel magnet array system was constructed to use Larmor precession for boosting the signal intensity of rf-GD-MS. The enhancement mechanism with four magnet array devices of a single-block magnet and 2 X 2, 3 X 2, and 3 X 4 magnet arrays was simulated and studied by COMSOL Multiphysics Software 5.4.0 (COMSOL) to determine if the electrons in the discharge plasma could perform Larmor precession along the direction perpendicular to the magnetic field. Induced by Larmor precession, inelastic collisions between the primary electrons and the sample produced numerous secondary electrons and further improved the ionization efficiency. Moreover, the fuzzy synthetic evaluation result predicted that the device with a 3X 2 magnet array would display the greatest enhancement effect among the four devices. On the basis of these theoretical studies, a magnet array system with four magnet array devices was fabricated and utilized for studies of two scintillation crystals BGO and PWO. The observations indicated that the signal intensities obtained for Bi-209 and Pb-208 with the magnet array system were 630-3600 times of that obtained without a magnet and were enhanced by a factor of 1.5-2.8 compared with a previously reported stacked magnetic device. Two NIST samples were used to validate the method, and the results suggested that relative errors were less than 10%, and the lowest detection limit for the 3 X 2 magnet array could reach 0.0032 mu g.g(-1). Furthermore, the magnet array enhancement system with Larmor precession offers an efficient and sensitive approach for direct analysis of nonconducting materials.
机译:构建了一种新颖的磁体阵列系统,以利用Larmor Precession来提高RF-GD-MS的信号强度。用COMSOL Multiphysics Software 5.4.0(COMSOL)模拟具有单块磁铁和2×2,3×2和3×4 4磁体阵列的四个磁铁阵列装置的增强机构,以确定电子中的电子放电等离子体可以沿着垂直于磁场的方向进行大通进程。由马尔莫尔的预析诱导,初级电子和样品之间的非弹性碰撞产生了许多二次电子并进一步提高了电离效率。此外,模糊综合评估结果预测,具有3×2磁体阵列的装置将显示四个设备中最大的增强效果。在这些理论研究的基础上,制造具有四个磁铁阵列装置的磁体阵列系统,并用于研究两个闪烁晶体BGO和PWO。观察结果表明,与先前报道的堆叠磁性装置相比,在没有磁铁的情况下获得的Bi-209和PB-208的信号强度为630-3600倍,并且与先前报道的堆叠磁性装置相比,在1.5-2.8的倍数下提高了1.5-2.8倍。使用两个NIST样本来验证该方法,结果表明相对误差小于10%,并且3×2磁体阵列的最低检测限达0.0032μg(-1)。此外,具有传统PREASION的磁铁阵列增强系统提供了一种有效敏感的方法,可直接分析非导电材料。

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  • 来源
    《Analytical chemistry》 |2020年第14期|共8页
  • 作者单位

    Chinese Acad Sci Natl Ctr Inorgan Mass Spectrometry Shanghai Shanghai Inst Ceram Shanghai 200050 Peoples R China;

    Chinese Acad Sci Natl Ctr Inorgan Mass Spectrometry Shanghai Shanghai Inst Ceram Shanghai 200050 Peoples R China;

    Chinese Acad Sci Natl Ctr Inorgan Mass Spectrometry Shanghai Shanghai Inst Ceram Shanghai 200050 Peoples R China;

    Univ Sussex Sch Life Sci Dept Chem Brighton BN1 9QJ E Sussex England;

    Chinese Acad Sci Natl Ctr Inorgan Mass Spectrometry Shanghai Shanghai Inst Ceram Shanghai 200050 Peoples R China;

    Univ Shanghai Sci &

    Technol Sch Mat Sci &

    Engn Shanghai 200093 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
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