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脉冲加速电荷检测质谱法:在称量电喷雾滴中的应用。

Pulsed acceleration charge detection mass spectrometry: application to weighing electrosprayed droplets.

作者信息

Mabbett Sarah R, Zilch Lloyd W, Maze Joshua T, Smith John W, Jarrold Martin F

机构信息

Chemistry Department, Indiana University, 800 East Kirkwood Avenue, Bloomington, Indiana 47405, USA.

出版信息

Anal Chem. 2007 Nov 15;79(22):8431-9. doi: 10.1021/ac071513s. Epub 2007 Oct 11.

Abstract

We describe a new approach to measuring the masses of individual macroions. The method employs a pulsed acceleration tube located between two sensitive image charge detectors. The charge and velocity of the macroion are recorded with the first image charge detector. The ion is pulse accelerated through a known voltage drop, and then the charge and velocity are remeasured using the second image charge detector. The mass of the ion is deduced from its charge and its initial and final velocities. The approach has been used to measure masses in the 10(10)-10(14) Da range with z = 10(3)-10(6) and m/z = 10(6)-10(9). It should be extendable to masses of <10(6) Da. We have used the method to determine the size and charge of water droplets transmitted through a capillary interface and an aperture interface. The droplets detected from the aperture interface are approximately 1 order of magnitude smaller in mass than those detected from the capillary interface. The droplets from both interfaces have relatively low charges, particularly with the capillary interface where they are only charged to a small fraction of the Rayleigh limit. These results suggest that the aerodynamic breakup of the droplets plays a significant role in the mechanism of electrospray ionization.

摘要

我们描述了一种测量单个大离子质量的新方法。该方法采用位于两个灵敏图像电荷探测器之间的脉冲加速管。大离子的电荷和速度由第一个图像电荷探测器记录。离子通过已知的电压降进行脉冲加速,然后使用第二个图像电荷探测器重新测量其电荷和速度。离子的质量由其电荷以及初始和最终速度推导得出。该方法已用于测量质量范围在10¹⁰ - 10¹⁴道尔顿,z = 10³ - 10⁶且m/z = 10⁶ - 10⁹的离子。它应该能够扩展到小于10⁶道尔顿的质量测量。我们已使用该方法确定通过毛细管接口和孔径接口传输的水滴的大小和电荷。从孔径接口检测到的水滴质量比从毛细管接口检测到的水滴质量小约1个数量级。来自两个接口的水滴电荷相对较低,特别是对于毛细管接口,在那里它们仅被充电到瑞利极限的一小部分。这些结果表明,水滴的气动破碎在电喷雾电离机制中起着重要作用。

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