Department of Chemistry, Purdue University, West Lafayette, IN 47907, USA.
KapScience LLC, Tewksbury, MA 01876, USA.
Analyst. 2017 Jun 21;142(12):2109-2117. doi: 10.1039/c7an00664k. Epub 2017 May 26.
A limitation of conventional quadrupole ion trap scan modes which use rf amplitude control for mass scanning is that, in order to detect a subset of an ion population, the rest of the ion population must also be interrogated. That is, ions cannot be detected out of order; they must be detected in order of either increasing or decreasing mass-to-charge (m/z). However, an ion trap operated in the ac frequency scan mode, where the rf amplitude is kept constant and instead the ac frequency is used for mass-selective operations, has no such limitation because any variation in the ac frequency affects only the subset of ions whose secular frequencies match the perturbation frequency. Hence, an ion trap operated in the ac frequency scan mode can perform any arbitrary mass scan, as well as a sequence of scans, using a single ion injection; we demonstrate both capabilities here. Combining these two capabilities, we demonstrate the acquisition of a full mass spectrum, a product ion spectrum, and a second generation product ion spectrum using a single ion injection event. We further demonstrate a "segmented scan" in which different mass ranges are interrogated at different rf amplitudes in order to improve resolution over a portion of the mass range, and a "periodic scan" in which ions are continuously introduced into the ion trap to achieve a nearly 100% duty cycle. These unique scan modes, along with other characteristics of ac frequency scanning, are particularly appropriate for miniature ion trap mass spectrometers. Hence, implementation of ac frequency scanning on a prototype of the Mars Organic Molecule Analyzer mass spectrometer is also described.
传统的四极离子阱扫描模式的一个限制是,为了检测离子群体的一个子集,必须对其余的离子群体进行询问。也就是说,离子不能乱序检测,它们必须按照质荷比(m/z)增加或减少的顺序进行检测。然而,在使用交流频率进行选择性操作的交流频率扫描模式下,离子阱不受此限制,因为交流频率的任何变化只会影响与扰动频率匹配的离子子集。因此,在交流频率扫描模式下操作的离子阱可以使用单个离子注入执行任何任意的质量扫描以及一系列扫描;我们在这里演示了这两种功能。结合这两种功能,我们演示了使用单个离子注入事件获取全质谱、产物离子谱和第二代产物离子谱。我们进一步演示了一种“分段扫描”,其中在不同的射频幅度下询问不同的质量范围,以提高部分质量范围内的分辨率,以及一种“周期性扫描”,其中离子连续引入离子阱以实现近 100%的占空比。这些独特的扫描模式以及交流频率扫描的其他特性特别适用于微型离子阱质谱仪。因此,还描述了在火星有机物分析质谱仪原型上实现交流频率扫描。