Clowers Brian H, Ibrahim Yehia M, Prior David C, Danielson William F, Belov Mikhail E, Smith Richard D
Biological Sciences Division, Pacific Northwest National Laboratory, P.O. Box 999, Richland, Washington 99352, USA.
Anal Chem. 2008 Feb 1;80(3):612-23. doi: 10.1021/ac701648p. Epub 2008 Jan 1.
Conventional ion mobility spectrometers that sample ion packets from continuous sources have traditionally been constrained by an inherently low duty cycle. As such, ion utilization efficiencies have been limited to <1% in order to maintain instrumental resolving power. Using a modified electrodynamic ion funnel, we demonstrated the ability to accumulate, store, and eject ions in conjunction with ion mobility spectrometry (IMS), which elevated the charge density of the ion packets ejected from the ion funnel trap (IFT) and provided a considerable increase in the overall ion utilization efficiency of the IMS instrument. A 7-fold increase in signal intensity was revealed by comparing continuous ion beam current with the amplitude of the pulsed ion current in IFT-IMS experiments using a Faraday plate. Additionally, we describe the IFT operating characteristics using a time-of-flight mass spectrometer attached to the IMS drift tube.
传统上,从连续源采样离子包的常规离子迁移谱仪一直受到固有低占空比的限制。因此,为了保持仪器的分辨能力,离子利用效率被限制在<1%。使用改进的电动离子漏斗,我们展示了结合离子迁移谱(IMS)积累、存储和喷射离子的能力,这提高了从离子漏斗阱(IFT)喷射出的离子包的电荷密度,并使IMS仪器的整体离子利用效率有了显著提高。在使用法拉第板的IFT-IMS实验中,通过比较连续离子束电流与脉冲离子电流的幅度,发现信号强度增加了7倍。此外,我们使用连接到IMS漂移管的飞行时间质谱仪描述了IFT的操作特性。