Space Charge Induced Dissociation Due to Extended Ion Accumulation Preceding Cyclic Ion Mobility Separation.

IF 2.7 2区 化学 Q2 BIOCHEMICAL RESEARCH METHODS
Sudam S Mane, Easton K Cox, Kenneth W Lee
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引用次数: 0

Abstract

Cyclic ion mobility spectrometry (cIMS) provides the potential for high resolution separations of small molecule isomers using multiple passes in a closed-loop geometry. Achieving this potential, however, is limited by the analyte stability in the instrument. Fragile ions are susceptible to dissociation when employing long analysis times required by multipass separations. Correctly identifying the causes of analyte ion loss is critical to facilitating high resolution ion mobility separations. Our previous work with dexamethasone and betamethasone demonstrated that the separation of these two epimers was partially limited by fragmentation over long multipass separations. Further investigations into the cause suggest that most analyte loss occurs because of accumulating many ions in the trap prior to cIMS injection rather than long exposure times to the cIMS region of the instrument. This observation aligns with previous observations of ion activation due to space charge effects in high density trapped ion populations. This work demonstrates the unique aspects of space charge induced fragmentation in cIMS directly resulting from variable pre-cIMS ion accumulation times due to multipath separations while reinforcing the importance of regulating ion accumulation prior to IMS.

在循环离子迁移分离之前,由于离子积累的延长,空间电荷诱导解离。
循环离子迁移谱法(cIMS)提供了高分辨率分离小分子异构体的潜力,在闭环几何结构中使用多个通道。然而,实现这一潜力受到仪器中分析物稳定性的限制。当采用多道分离所需的长时间分析时,易碎离子易解离。正确识别分析离子损失的原因是促进高分辨率离子迁移率分离的关键。我们之前对地塞米松和倍他米松的研究表明,这两种外旋体的分离部分受到长多道分离的碎片化的限制。对原因的进一步调查表明,大多数分析物损失的发生是因为在注入cIMS之前,陷阱中积累了许多离子,而不是长时间暴露于仪器的cIMS区域。这一观察结果与先前在高密度捕获离子种群中由于空间电荷效应而引起的离子活化的观察结果一致。这项工作证明了cIMS中空间电荷诱导碎片化的独特方面,这是由多径分离导致的可变cIMS前离子积累时间直接导致的,同时强调了在IMS之前调节离子积累的重要性。
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来源期刊
CiteScore
5.50
自引率
9.40%
发文量
257
审稿时长
1 months
期刊介绍: The Journal of the American Society for Mass Spectrometry presents research papers covering all aspects of mass spectrometry, incorporating coverage of fields of scientific inquiry in which mass spectrometry can play a role. Comprehensive in scope, the journal publishes papers on both fundamentals and applications of mass spectrometry. Fundamental subjects include instrumentation principles, design, and demonstration, structures and chemical properties of gas-phase ions, studies of thermodynamic properties, ion spectroscopy, chemical kinetics, mechanisms of ionization, theories of ion fragmentation, cluster ions, and potential energy surfaces. In addition to full papers, the journal offers Communications, Application Notes, and Accounts and Perspectives
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