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一种用于提高傅里叶变换离子回旋共振质谱中质量分辨率、质量精度、重现性和质量上限的“屏蔽”型静电离子阱。

A "screened" electrostatic ion trap for enhanced mass resolution, mass accuracy, reproducibility, and upper mass limit in Fourier transform ion cyclotron resonance mass spectrometry.

作者信息

Wang M, Marshall A G

出版信息

Anal Chem. 1989 Jun 1;61(11):1288-93. doi: 10.1021/ac00186a021.

Abstract

Until now, it was thought that the optimal static electromagnetic ion trap for Fourier transform ion cyclotron resonance (FT-ICR) mass spectrometry should be designed to produce a quadrupolar electrical potential, for which the ion cyclotron frequency is independent of the ion's preexcitation location within the trap. However, a quadrupolar potential results in a transverse (to the magnetic field) electric field that increases linearly with distance from the center of the trap. That radially linear electric field shifts the observed ICR frequency, increases the ICR orbital radius, and ultimately limits the highest mass-to-charge ratio ion that can be contained within the trap. In this paper, we propose a new static electromagnetic ion "trap" in which grounded screens placed just inside the usual "trapping" plates produce a good approximation to a "particle-in-a-box" potential (rather than the quadrupolar "harmonic oscillator" potential). SIMION calculations confirm that the electric potential of the screened trap is near zero almost everywhere within the trap. For our screened orthorhombic (2.5 in. X 2 in. X 2 in.) trap, the experimental ICR frequency shift due to trapping voltage is reduced by a factor of approximately 100, and the experimental variation of ICR frequency with ICR radius is reduced by a factor of approximately 10 compared to a conventional (unscreened) 2-in. cubic ion trap.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

直到现在,人们一直认为,用于傅里叶变换离子回旋共振(FT-ICR)质谱分析的最佳静态电磁离子阱应设计成能产生四极电势,对于这种电势,离子回旋频率与离子在阱内的预激发位置无关。然而,四极电势会产生一个横向(相对于磁场)电场,该电场随距阱中心的距离呈线性增加。这种径向线性电场会使观测到的ICR频率发生偏移,增大ICR轨道半径,并最终限制阱内所能容纳的最高质荷比离子。在本文中,我们提出了一种新型的静态电磁离子“阱”,其中在通常的“捕获”极板内侧放置接地屏蔽,可产生一个与“盒中粒子”电势(而非四极“谐振子”电势)非常近似的电势。SIMION计算证实,屏蔽阱的电势在阱内几乎处处接近零。对于我们的屏蔽正交(2.5英寸×2英寸×2英寸)阱,与传统的(未屏蔽的)2英寸立方离子阱相比,由于捕获电压导致的实验ICR频率偏移降低了约100倍,ICR频率随ICR半径的实验变化降低了约10倍。(摘要截于250字)

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