Bunert E, Heptner A, Reinecke T, Kirk A T, Zimmermann S
Department of Sensors and Measurement Technology, Institute of Electrical Engineering and Measurement Technology, Leibniz Universität Hannover, Appelstr. 9a, 30167 Hannover, Germany.
Rev Sci Instrum. 2017 Feb;88(2):024102. doi: 10.1063/1.4976021.
Ion mobility spectrometers (IMS) are devices for fast and very sensitive trace gas analysis. The measuring principle is based on an initial ionization process of the target analyte. Most IMS employ radioactive electron sources, such as Ni or H. These radioactive materials have the disadvantage of legal restrictions and the electron emission has a predetermined intensity and cannot be controlled or disabled. In this work, we replaced the H source of our IMS with 100 mm drift tube length with our nonradioactive electron source, which generates comparable spectra to the H source. An advantage of our emission current controlled nonradioactive electron source is that it can operate in a fast pulsed mode with high electron intensities. By optimizing the geometric parameters and developing fast control electronics, we can achieve very short electron emission pulses for ionization with high intensities and an adjustable pulse width of down to a few nanoseconds. This results in small ion packets at simultaneously high ion densities, which are subsequently separated in the drift tube. Normally, the required small ion packet is generated by a complex ion shutter mechanism. By omitting the additional reaction chamber, the ion packet can be generated directly at the beginning of the drift tube by our pulsed nonradioactive electron source with only slight reduction in resolving power. Thus, the complex and costly shutter mechanism and its electronics can also be omitted, which leads to a simple low-cost IMS-system with a pulsed nonradioactive electron source and a resolving power of 90.
离子迁移谱仪(IMS)是用于快速且极其灵敏的痕量气体分析的设备。其测量原理基于目标分析物的初始电离过程。大多数离子迁移谱仪采用放射性电子源,如镍或氚。这些放射性材料存在法律限制的缺点,并且电子发射具有预定强度,无法控制或禁用。在这项工作中,我们用我们的非放射性电子源替换了我们的漂移管长度为100毫米的离子迁移谱仪的氚源,该非放射性电子源产生的光谱与氚源相当。我们的发射电流可控的非放射性电子源的一个优点是它可以在高电子强度的快速脉冲模式下运行。通过优化几何参数并开发快速控制电子设备,我们可以实现用于电离的非常短的电子发射脉冲,具有高强度且脉冲宽度可调节至几纳秒。这导致在同时具有高离子密度的情况下产生小的离子包,随后这些离子包在漂移管中被分离。通常,所需的小离子包是通过复杂的离子快门机制产生的。通过省略额外的反应室,离子包可以由我们的脉冲非放射性电子源直接在漂移管的起始处产生,分辨率仅有轻微降低。因此,复杂且昂贵的快门机制及其电子设备也可以省略,这导致了一种具有脉冲非放射性电子源且分辨率为90的简单低成本离子迁移谱仪系统。