Haapala Markus, Teppo Jaakko, Ollikainen Elisa, Kiiski Iiro, Vaikkinen Anu, Kauppila Tiina J, Kostiainen Risto
Faculty of Pharmacy, University of Helsinki, P.O. Box 56, FI-00014 Helsinki, Finland.
Anal Chem. 2015 Mar 17;87(6):3280-5. doi: 10.1021/ac504220v. Epub 2015 Mar 5.
A new ambient mass spectrometry method, solvent jet desorption capillary photoionization (DCPI), is described. The method uses a solvent jet generated by a coaxial nebulizer operated at ambient conditions with nitrogen as nebulizer gas. The solvent jet is directed onto a sample surface, from which analytes are extracted into the solvent and ejected from the surface in secondary droplets formed in collisions between the jet and the sample surface. The secondary droplets are directed into the heated capillary photoionization (CPI) device, where the droplets are vaporized and the gaseous analytes are ionized by 10 eV photons generated by a vacuum ultraviolet (VUV) krypton discharge lamp. As the CPI device is directly connected to the extended capillary inlet of the MS, high ion transfer efficiency to the vacuum of MS is achieved. The solvent jet DCPI provides several advantages: high sensitivity for nonpolar and polar compounds with limit of detection down to low fmol levels, capability of analyzing small and large molecules, and good spatial resolution (250 μm). Two ionization mechanisms are involved in DCPI: atmospheric pressure photoionization, capable of ionizing polar and nonpolar compounds, and solvent assisted inlet ionization capable of ionizing larger molecules like peptides. The feasibility of DCPI was successfully tested in the analysis of polar and nonpolar compounds in sage leaves and chili pepper.
本文介绍了一种新的常压质谱方法——溶剂喷射解吸毛细管光电离(DCPI)。该方法使用由同轴雾化器产生的溶剂喷射,雾化器在常压条件下以氮气作为雾化气体运行。溶剂喷射被引导至样品表面,分析物从样品表面被萃取到溶剂中,并在喷射与样品表面碰撞形成的二次液滴中从表面喷出。二次液滴被引导至加热的毛细管光电离(CPI)装置中,在该装置中液滴被汽化,气态分析物被真空紫外(VUV)氪放电灯产生的10 eV光子电离。由于CPI装置直接连接到质谱仪的扩展毛细管入口,因此实现了向质谱仪真空的高离子传输效率。溶剂喷射DCPI具有多个优点:对非极性和极性化合物具有高灵敏度,检测限低至低飞摩尔水平,能够分析小分子和大分子,以及良好的空间分辨率(250μm)。DCPI涉及两种电离机制:能够电离极性和非极性化合物大气压光电离,以及能够电离肽等较大分子的溶剂辅助进样电离。DCPI在鼠尾草叶和辣椒中极性和非极性化合物分析方面的可行性得到了成功验证。