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Modeling of an Inverted Drift Tube for Improved Mobility Analysis of Aerosol Particles

机译:反向漂移管的建模用于改进气溶胶颗粒的流动性分析

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摘要

A new mobility particle analyzer, which has been termed Inverted Drift Tube, has been modeled analytically as well as numerically and proven to be a very capable instrument. The basis for the new design have been the shortcomings of the previous ion mobility spectrometers, in particular (a) diffusional broadening which leads to degradation of instrument resolution and (b) inadequate low and fixed resolution (not mobility dependent) for large sizes. To overcome the diffusional broadening and have a mobility based resolution, the IDT uses two varying controllable opposite forces, a flow of gas with velocity v gas, and a linearly increasing electric field that opposes the movement. A new parameter, the separation ratio Λ = v drift/v gas, is employed to determine the best possible separation for a given set of nanoparticles. Due to the system’s need to operate at room pressure, two methods of capturing the ions at the end of the drift tube have been developed, Intermittent Push Flow for a large range of mobilities, and Nearly-Stopping Potential Separation, with very high separation but limited only to a narrow mobility range. A chromatography existing concept of resolving power is used to differentiate between peak resolution in the IDT and acceptable separation between similar mobility sizes.
机译:一种新型的流动性粒子分析仪,称为倒置漂移管,已经过分析和数值建模,并被证明是一种非常强大的仪器。新设计的基础是以前的离子迁移谱仪的缺点,特别是(a)扩散展宽会导致仪器分辨率降低,并且(b)对于大尺寸样品,分辨率和固定分辨率不足(与迁移率无关)。为了克服扩散展宽并具有基于迁移率的分辨率,IDT使用两个变化的可控相反力,即流速为v gas的气流和与运动相对的线性增加的电场。采用一个新的参数,分离比率= v漂移/ v气体,可以确定给定纳米颗粒组的最佳分离度。由于系统需要在室温下运行,因此已开发出两种在漂移管末端捕获离子的方法:用于大范围迁移率的间歇推流法和接近终止电位分离法,具有很高的分离度,但仅限于狭窄的移动范围。使用色谱现有的分辨力概念来区分IDT中的峰分辨率和相似迁移率大​​小之间可接受的分离度。

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