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非连续亚大气压界面减少了微型 CAPI 质谱仪对气流的影响。

Discontinuous Subatmospheric Pressure Interface Reduces the Gas Flow Effects on Miniature CAPI Mass Spectrometer.

机构信息

State Key Laboratory of Precision Measurement Technology and Instruments, Department of Precision Instrument, Tsinghua University, Beijing 100084, China.

Division of Advanced Manufacturing, Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen 518055, China.

出版信息

Anal Chem. 2020 Mar 3;92(5):3707-3715. doi: 10.1021/acs.analchem.9b04824. Epub 2020 Jan 29.

Abstract

In the range of miniature mass spectrometers, the miniature ion trap mass spectrometer with continuous atmospheric pressure interface (CAPI) shows good performance potential and advantages due to its excellent sensitivity and analysis speed. However, in previous cases, placing the ion trap directly near the skimmer aperture means it will suffer high gas shock, which may affect performance. In this study, an improved miniature CAPI ion trap mass spectrometer was developed by gas flow optimization. According to the experimental results, excessive gas flow affects stability and resolution. The impact of the gas flow can be effectively reduced by reducing the inner diameter of the skimmer and adding an additional lens element to move the ion trap away from the skimmer aperture. However, this method will affect the sensitivity of the instrument to some extent, so a discontinuous subatmospheric pressure interface (DSPI) was developed to reduce the gas flow effects and improve the comprehensive performance. When using the DSPI system with a 0.4 mm skimmer and entrance lens, the resolution for roxithromycin was up to 2800 at a scanning speed of 1015 Th/s, which was 3.4-fold higher that without DSPI. The dynamic range of concentration reached 4 orders of magnitude and the detection limit for repaglinide was as low as 1 ng/mL. This study offers a new approach to develop better miniature ion trap mass spectrometers and to extend their practical application.

摘要

在微型质谱仪领域,具有连续大气压接口(CAPI)的微型离子阱质谱仪因其出色的灵敏度和分析速度而显示出良好的性能潜力和优势。然而,在以前的案例中,将离子阱直接放置在取样器孔径附近意味着它将遭受高气压冲击,这可能会影响性能。在这项研究中,通过优化气流来开发了一种改进的微型 CAPI 离子阱质谱仪。根据实验结果,过多的气流会影响稳定性和分辨率。通过减小取样器的内径并添加附加透镜元件将离子阱移离取样器孔径,可以有效降低气流的影响。然而,这种方法会在一定程度上影响仪器的灵敏度,因此开发了不连续的亚大气压接口(DSPI)来降低气流的影响,提高综合性能。当使用具有 0.4 毫米取样器和入口透镜的 DSPI 系统时,罗红霉素的分辨率高达 2800,在 1015 Th/s 的扫描速度下,是没有 DSPI 的 3.4 倍。浓度的动态范围达到 4 个数量级,瑞格列奈的检测限低至 1ng/mL。本研究为开发更好的微型离子阱质谱仪并扩展其实际应用提供了一种新方法。

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