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Voltage Sweep Ion Mobility Spectrometry

机译:电压扫描离子迁移谱

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摘要

Ion mobility spectrometry (IMS) is a rapid, gas-phase separation technique that exhibits excellent separation of ions as a standalone instrument. However, IMS cannot achieve optimal separation power with both small and large ions simultaneously. Similar to the general elution problem in chromatography, fast ions are well resolved using a low electric field (50-150 V/cm), whereas slow drifting molecules are best separated using a higher electric field (250-500 V/cm). While using a low electric field, IMS systems tend to suffer from low ion transmission and low signal-to-noise ratios. Through the use a novel voltage algorithm, some of these effects can be alleviated. The electric field was swept from low to high while monitoring a specific drift time, and the resulting data were processed to create a 'voltage-sweep' spectrum. If an optimal drift time is calculated for each voltage and scanned simultaneously, a spectrum may be obtained with optimal separation throughout the mobility range. This increased the resolving power up to the theoretical maximum for every peak in the spectrum and extended the peak capacity of the IMS system, while maintaining accurate drift time measurements. These advantages may be extended to any IMS, requiring only a change in software.
机译:离子迁移谱(IMS)是一种快速的气相分离技术,它作为独立仪器具有出色的离子分离能力。但是,IMS不能同时实现大离子和小离子的最佳分离能力。与色谱中的一般洗脱问题类似,使用低电场(50-150 V / cm)可以很好地分离快离子,而使用较高电场(250-500 V / cm)可以最好地分离慢速漂移的分子。当使用低电场时,IMS系统倾向于遭受低离子传输和低信噪比的困扰。通过使用新颖的电压算法,可以减轻其中的一些影响。在监视特定漂移时间的同时,将电场从低到高扫描,并对所得数据进行处理以创建“电压扫描”频谱。如果为每个电压计算最佳漂移时间并同时进行扫描,则可以在整个迁移率范围内获得最佳分离的光谱。这将光谱中每个峰的分辨能力提高到理论最大值,并扩展了IMS系统的峰容量,同时保持了准确的漂移时间测量。这些优点可以扩展到仅需要软件更改的任何IMS。

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