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表面声波雾化提高低温等离子体电离质谱分析的化合物选择性。

Surface acoustic wave nebulization improves compound selectivity of low-temperature plasma ionization for mass spectrometry.

机构信息

Institute of Analytical Chemistry, University of Leipzig, Linnéstraße 3, 04103, Leipzig, Germany.

Leibniz Institute for Solid State and Materials Research IFW Dresden, Institute for Complex Materials (IKM), SAWLab Saxony, 01069, Dresden, Germany.

出版信息

Sci Rep. 2021 Feb 3;11(1):2948. doi: 10.1038/s41598-021-82423-w.

Abstract

Mass spectrometry coupled to low-temperature plasma ionization (LTPI) allows for immediate and easy analysis of compounds from the surface of a sample at ambient conditions. The efficiency of this process, however, strongly depends on the successful desorption of the analyte from the surface to the gas phase. Whilst conventional sample heating can improve analyte desorption, heating is not desirable with respect to the stability of thermally labile analytes. In this study using aromatic amines as model compounds, we demonstrate that (1) surface acoustic wave nebulization (SAWN) can significantly improve compound desorption for LTPI without heating the sample. Furthermore, (2) SAWN-assisted LTPI shows a response enhancement up to a factor of 8 for polar compounds such as aminophenols and phenylenediamines suggesting a paradigm shift in the ionization mechanism. Additional assets of the new technique demonstrated here are (3) a reduced analyte selectivity (the interquartile range of the response decreased by a factor of 7)-a significant benefit in non-targeted analysis of complex samples-and (4) the possibility for automated online monitoring using an autosampler. Finally, (5) the small size of the microfluidic SAWN-chip enables the implementation of the method into miniaturized, mobile LTPI probes.

摘要

质谱法与低温等离子体电离(LTPI)相结合,可以在环境条件下立即、轻松地分析样品表面的化合物。然而,该过程的效率强烈依赖于分析物从表面成功解吸到气相。虽然常规的样品加热可以改善分析物的解吸,但对于热不稳定的分析物的稳定性来说,加热是不理想的。在这项使用芳香胺作为模型化合物的研究中,我们证明了:(1)表面声波雾化(SAWN)可以在不加热样品的情况下,显著提高 LTPI 中的化合物解吸效率。此外,(2)SAWN 辅助的 LTPI 对极性化合物(如氨基酚和苯二胺)的响应增强了 8 倍,这表明了电离机制的范式转变。这里展示的新技术的其他优势包括:(3)降低了分析物的选择性(响应的四分位距降低了 7 倍)——这是复杂样品非靶向分析的显著优势,以及(4)使用自动进样器实现自动化在线监测的可能性。最后,(5)微流控 SAWN 芯片的小巧尺寸使该方法能够应用于小型化、移动的 LTPI 探头中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4aa5/7858570/0c5e34f750a7/41598_2021_82423_Fig1_HTML.jpg

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