离子迁移光谱法
质谱法
分光计
化学
离子源
四极杆质量分析仪
混合质谱仪
离子
漂移管,漂移管
电迁移率
分析化学(期刊)
选择性离子监测
三级四极质谱仪
电离
阀体孔板
选择性反应监测
光学
物理
色谱法
生物
有机化学
串联质谱法
气相色谱-质谱法
生态学
作者
А. А. Сысоев,Alexey Adamov,Jyrki Viidanoja,Raimo A. Ketola,Risto Kostiainen,Tapio Kotiaho
摘要
Abstract An ion mobility spectrometer that can easily be installed as an intermediate component between a commercial triple‐quadrupole mass spectrometer and its original atmospheric pressure ionization (API) sources was developed. The curtain gas from the mass spectrometer is also used as the ion mobility spectrometer drift gas. The design of the ion mobility spectrometer allows reasonably fast installation (about 1 h), and thus the ion mobility spectrometer can be considered as an accessory of the mass spectrometer. The ion mobility spectrometer module can also be used as an independently operated device when equipped with a Faraday cup detector. The drift tube of the ion mobility spectrometer module consists of inlet, desolvation, drift, and extraction regions. The desolvation, drift and extraction regions are separated by ion gates. The inlet region has the shape of a stainless steel cup equipped with a small orifice. Ion mobility spectrometer drift gas is introduced through a curtain gas line from an original flange of the mass spectrometer. After passing through the drift tube, the drift gas serves as a curtain gas for the ion‐sampling orifice of the ion mobility spectrometer before entering the ion source. Counterflow of the drift gas improves evaporation of the solvent from the electrosprayed sample. Drift gas is pumped away from the ion source through the original exhaust orifice of the ion source. Initial characterization of the ion mobility spectrometer device includes determination of resolving power values for a selected set of test compounds, separation of a simple mixture, and comparison of the sensitivity of the electrospray ionization ion mobility spectrometry/mass spectrometry (ESI‐IMS/MS) mode with that of the ESI‐MS mode. A resolving power of 80 was measured for 2,6‐di‐ tert ‐butylpyridine in a 333 V/cm drift field at room temperature and with a 0.2 ms ion gate opening time. The resolving power was shown to be dependent on drift gas flow rate for all studied ion gate opening times. Resolving power improved as the drift gas flow increased, e.g. at a 0.5 ms gate opening time, a resolving power of 31 was obtained with a 0.65 L/min flow rate and 47 with a 1.3 L/min flow rate for tetrabutylammonium iodide. The measured limits of detection with ESI‐MS and with ESI‐IMS/MS modes were similar, demonstrating that signal losses in the IMS device are minimal when it is operated in a continuous flow mode. Based on these preliminary results, the IMS/MS instrument is anticipated to have potential for fast screening analysis that can be applied, for example, in environmental and drug analysis. Copyright © 2004 John Wiley & Sons, Ltd.
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