Zhang Qian, Lin Lin, Yu Quan, Wang Xiaohao
Division of Advanced Manufacturing, Tsinghua Shenzhen International Graduate School Shenzhen 518055 China
State Key Laboratory of Precision Measurement Technology and Instruments, Department of Precision Instruments, Tsinghua University Beijing 100084 China.
RSC Adv. 2020 Jan 24;10(7):4103-4109. doi: 10.1039/c9ra09104a. eCollection 2020 Jan 22.
In this study, a new approach to perform self-aspirating sampling in mass spectrometry (MS) analysis was developed by using the native inspiratory ability of a mass spectrometer. Specifically, the inspiratory channel and sampling inlet of the MS instrument were integrated into a single pathway through a sealed ionization chamber to facilitate analyte delivery and improve sample utilization. Based on this approach, combined with structural simplification and optimization, a versatile electrospray ionization (ESI) source has been constructed and characterized using different mass spectrometers. In addition to the self-aspirating ability, this source configuration can provide sub-ambient pressure (SAP) conditions for ionization, which were conducive to suppressing the background ions generated from some air-involved reactions. Moreover, it can also be used directly for electrospray-driven extraction ionization. With the SAP-ESI source, a conventional mass spectrometer enables rapid analysis of both volatiles and solutions secondary electrospray ionization and coaxial electrospray ionization, respectively. As the compact gas pathway of the source will promote the efficient transfer and ionization of the sampled substances, the total consumption of the analyte for each analysis can be reduced to subnanogram level and a subppbv limit detection is achieved. Other demonstrated features such as the versatility, easy operation as well as simple assembly will likely contribute to the prevalence of the proposed sampling and ionization strategy.
在本研究中,利用质谱仪(MS)自身的吸气能力,开发了一种在质谱分析中进行自吸气采样的新方法。具体而言,通过密封的电离室将质谱仪的吸气通道和采样入口整合到单一通路中,以促进分析物传输并提高样品利用率。基于此方法,结合结构简化和优化,构建了一种通用的电喷雾电离(ESI)源,并使用不同的质谱仪对其进行了表征。除了自吸气能力外,这种源配置可为电离提供亚环境压力(SAP)条件,这有利于抑制一些涉及空气反应产生的背景离子。此外,它还可直接用于电喷雾驱动的萃取电离。借助SAP-ESI源,传统质谱仪能够分别对挥发性物质和溶液进行快速分析,分别采用二次电喷雾电离和同轴电喷雾电离。由于该源紧凑的气体通路将促进采样物质的高效传输和电离,每次分析的分析物总消耗量可降至亚纳克水平,并实现亚ppbv的检测限。其他已证明的特性,如通用性、易于操作以及简单组装,可能会有助于所提出的采样和电离策略的普及。