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Planar differential mobility spectrometer as a pre-filter for atmospheric pressure ionization mass spectrometry

机译:平面差分迁移谱仪作为常压电离质谱仪的预过滤器

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Ion filters based on planar DMS can be integrated with the inlet configuration of most mass spectrometers, and are able to enhance the quality of mass analysis and quantitative accuracy by reducing chemical noise, and by pre-separating ions of similar mass. This paper is the first in a series of papers describing the optimization of DMS/MS instrumentation. In this paper the important physical parameters of a planar DMS-MS interface including analyzer geometry, analyzer coupling to a mass spectrometer, and transport gas flow control are considered. The goal is to optimize ion transmission and transport efficiency, provide optimal and adjustable resolution, and produce stable operation under conditions of high sample contamination. We discuss the principles of DMS separations and highlight the theoretical underpinnings. The main differences between planar and cylindrical geometries are presented, including a discussion of the advantages and disadvantages of RF ion focusing. In addition, we present a description of optimization of the frequency and amplitude of the DMS fields for resolution and ion transmission, and a discussion of the influence and importance of ion residence time in DMS. We have constructed a mass spectrometer interface for planar geometries that takes advantage of atmospheric pressure gas dynamic principles, rather than ion focusing, to minimize ion losses from diffusion in the analyzer and to maximize total ion transport into the mass spectrometer. A variety of experimental results has been obtained that illustrate the performance of this type of interface, including tests of resistance to high contamination levels, and the separation of stereoisomers. In a subsequent publication the control of the chemical interactions that drive the separation process of a DMS/MS system will be considered. In a third publication we describe novel electronics designed to provide the high voltage asymmetric waveform fields (SV) required for these devices as well as the effects of different waveforms.
机译:基于平面DMS的离子过滤器可以与大多数质谱仪的入口配置集成在一起,并且能够通过减少化学噪声和预先分离相似质量的离子来提高质量分析的质量和定量精度。本文是描述DMS / MS仪器优化的系列文章中的第一篇。本文考虑了平面DMS-MS接口的重要物理参数,包括分析仪的几何形状,分析仪与质谱仪的耦合以及传输气体的流量控制。目的是优化离子传输和传输效率,提供最佳和可调节的分辨率,并在高样品污染条件下产生稳定的运行。我们讨论了DMS分离的原理并强调了理论基础。介绍了平面和圆柱几何之间的主要区别,包括对RF离子聚焦的优缺点的讨论。此外,我们还介绍了用于分辨率和离子传输的DMS场的频率和幅度优化的描述,以及离子在DMS中停留时间的影响和重要性的讨论。我们为平面几何构造了质谱仪接口,该接口利用大气压气体动力学原理而不是离子聚焦,以最大程度地减少分析仪中扩散引起的离子损失,并最大程度地提高离子向质谱仪中的总迁移率。已获得各种实验结果来说明这种界面的性能,包括对高污染水平的抗性测试和立体异构体的分离。在随后的出版物中,将考虑对驱动DMS / MS系统分离过程的化学相互作用的控制。在第三本出版物中,我们描述了旨在提供这些设备所需的高压非对称波形场(SV)以及不同波形的影响的新型电子设备。

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