Tu Min, Xu Wei, Zhai Yanbing
School of Medical Technology, Beijing Institute of Technology, Beijing 100081, P. R. China.
J Am Soc Mass Spectrom. 2024 Jun 5;35(6):1363-1369. doi: 10.1021/jasms.4c00100. Epub 2024 Apr 29.
The sensitivity of the miniature mass spectrometer (mini-MS) is largely restricted by the ion transmission in rough vacuum region. Even though various "in-line" ion transfer devices have improved mini-MS sensitivity, the severe dynamic gas is still weakening the efficiency of ion transmission in this region. Inspired by the "off-axis" ion funnel design in the lab-scale mass spectrometers, a miniature orthogonal injection ion funnel (MO-IF) was developed in this study for the mini-MS with a continuous atmospheric pressure interface. Capable of directing injected ions by 90° and then transport them forward to the downstream skimmer, the MO-IF enabled the separation of ions from the dynamic gas flow jetted out of the inlet capillary. The key factors were optimized for the MO-IF, including the effects of RF amplitude, DC electric fields, and the position of the repeller. Under optimized conditions, the MO-IF minimized the negative effects of dynamic gas and improved the ion transmission efficiency by ∼2-fold in comparison with the in-line injection ion funnel. As a result, a lower limit of detection of 0.5 ng/mL were obtained with good linearity for hypaconitine. Additionally, the MO-IF further decreased the buffer gas pressure in the second vacuum chamber and improved the mass resolution by 1.1-1.5 times at different scan rates.
微型质谱仪(mini-MS)的灵敏度在很大程度上受粗真空区域离子传输的限制。尽管各种“在线”离子传输装置提高了mini-MS的灵敏度,但剧烈的动态气体仍在削弱该区域离子传输的效率。受实验室规模质谱仪中“离轴”离子漏斗设计的启发,本研究为具有连续大气压接口的mini-MS开发了一种微型正交注入离子漏斗(MO-IF)。MO-IF能够将注入的离子引导90°,然后将其向前传输至下游分离器,从而使离子与从入口毛细管喷出的动态气流分离。对MO-IF的关键因素进行了优化,包括射频振幅、直流电场和推斥极位置的影响。在优化条件下,MO-IF将动态气体的负面影响降至最低,与在线注入离子漏斗相比,离子传输效率提高了约2倍。结果,对于次乌头碱,获得了0.5 ng/mL的较低检测限和良好的线性。此外,MO-IF进一步降低了第二真空腔中的缓冲气体压力,并在不同扫描速率下将质量分辨率提高了1.1至1.5倍。