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电喷雾电离-质谱联用接口中的电离与传输效率

Ionization and transmission efficiency in an electrospray ionization-mass spectrometry interface.

作者信息

Page Jason S, Kelly Ryan T, Tang Keqi, Smith Richard D

机构信息

Biological Sciences Division, Pacific Northwest National Laboratory, Richland, Washington 99352, USA.

出版信息

J Am Soc Mass Spectrom. 2007 Sep;18(9):1582-90. doi: 10.1016/j.jasms.2007.05.018. Epub 2007 Jun 2.

Abstract

The ionization and transmission efficiencies of an electrospray ionization (ESI) interface were investigated to advance the understanding of how these factors affect mass spectrometry (MS) sensitivity. In addition, the effects of the ES emitter distance to the inlet, solution flow rate, and inlet temperature were characterized. Quantitative measurements of ES current loss throughout the ESI interface were accomplished by electrically isolating the front surface of the interface from the inner wall of the heated inlet capillary, enabling losses on the two surfaces to be distinguished. In addition, the ES current lost to the front surface of the ESI interface was spatially profiled with a linear array of 340-microm-diameter electrodes placed adjacent to the inlet capillary entrance. Current transmitted as gas-phase ions was differentiated from charged droplets and solvent clusters by measuring sensitivity with a single quadrupole mass spectrometer. The study revealed a large sampling efficiency into the inlet capillary (>90% at an emitter distance of 1 mm), a global rather than a local gas dynamic effect on the shape of the ES plume resulting from the gas flow conductance limit of the inlet capillary, a large (>80%) loss of analyte ions after transmission through the inlet arising from incomplete desolvation at a solution flow rate of 1.0 microL/min, and a decrease in analyte ions peak intensity at lower temperatures, despite a large increase in ES current transmission efficiency.

摘要

研究了电喷雾电离(ESI)接口的电离和传输效率,以加深对这些因素如何影响质谱(MS)灵敏度的理解。此外,还表征了ES发射器到入口的距离、溶液流速和入口温度的影响。通过将接口的前表面与加热的入口毛细管内壁电隔离,实现了对整个ESI接口处ES电流损失的定量测量,从而能够区分两个表面上的损失。此外,利用与入口毛细管入口相邻放置的直径为340微米的线性电极阵列,对ESI接口前表面损失的ES电流进行了空间分布分析。通过使用单四极杆质谱仪测量灵敏度,将作为气相离子传输的电流与带电液滴和溶剂簇区分开来。研究表明,进入入口毛细管的采样效率很高(在发射器距离为1毫米时>90%),由于入口毛细管的气流传导极限,对ES羽流形状产生的是整体而非局部的气体动力学效应,在溶液流速为1.0微升/分钟时,通过入口传输后分析物离子的损失很大(>80%),这是由于不完全去溶剂化导致的,并且尽管ES电流传输效率大幅提高,但在较低温度下分析物离子的峰值强度仍会降低。

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