Low-Sample Flow Secondary Electrospray Ionization: Improving Vapor Ionization Efficiency

被引:32
作者
Vidal-de-Miguel, G. [1 ]
Macia, M. [1 ]
Pinacho, P. [1 ]
Blanco, J. [1 ]
机构
[1] Univ Valladolid, Energy & Fluid Mech Engn Dept, E-47002 Valladolid, Spain
关键词
ION MOBILITY SPECTROMETRY; MASS-SPECTROMETRY; GAS-CHROMATOGRAPHY; PHASE; EVAPORATION; VOLATILES;
D O I
10.1021/ac3005378
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
In secondary electrospray ionization (SESI) systems, gaseous analytes exposed to an elecrospray plume become ionized after charge is transferred from the charging electrosprayed particles to the sample species. Current SESI systems have shown a certain potential. However, their ionization efficiency is limited by space charge repulsion and by the high sample flows required to prevent vapor dilution. As a result, they have a poor conversion ratio of vapor into ions. We have developed and tested a new SESI configuration, termed low-flow SESI, that permits the reduction of the required sample flows. Although the ion to vapor concentration ratio is limited, the ionic flow to sample vapor flow ratio theoretically is not. The new ionizer is coupled to a planar differential mobility analyzer (DMA) and requires only 0.2 Ipm of vapor sample flow to produce 3.5 Ipm of ionic flow. The achieved ionization efficiency is 1/700 (one ion for every 700 molecules) for TNT and, thus, compared with previous SESI ionizers coupled with atmospheric pressure ionization-mass spectrometry (API-MS) (Mesonero, E.; Sillero, J. A.; Hernandez, M.; Fernandez de la Mora, J. Philadelphia PA, 2009) has been improved by a large factor of at least 50-100 (our measurements indicate 70). The new ionizer coupled with the planar DMA and a triple quadrupole mass spectrometer (ABSciex API5000) requires only 20 fg (50 million molecules) to produce a discernible signal after mobility and MS2 analysis.
引用
收藏
页码:8475 / 8479
页数:5
相关论文
共 40 条
[1]   Analytical techniques for single-cell metabolomics: state of the art and trends [J].
Amantonico, Andrea ;
Urban, Pawel L. ;
Zenobi, Renato .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2010, 398 (06) :2493-2504
[2]   Simple Coupling of Gas Chromatography to Electrospray Ionization Mass Spectrometry [J].
Brenner, Nina ;
Haapala, Markus ;
Vuorensola, Katariina ;
Kostiainen, Risto .
ANALYTICAL CHEMISTRY, 2008, 80 (21) :8334-8339
[3]   Detecting large biomolecules from high-salt solutions by fused-droplet electrospray ionization mass spectrometry [J].
Chang, DY ;
Lee, CC ;
Shiea, J .
ANALYTICAL CHEMISTRY, 2002, 74 (11) :2465-2469
[4]   Extractive electrospray ionization for direct analysis of undiluted urine, milk and other complex mixtures without sample preparation [J].
Chen, HW ;
Venter, A ;
Cooks, RG .
CHEMICAL COMMUNICATIONS, 2006, (19) :2042-2044
[5]   ANALYTICAL MERIT OF ELECTROSPRAY ION MOBILITY SPECTROMETRY AS A CHROMATOGRAPHIC DETECTOR [J].
CHEN, YH ;
HILL, HH ;
WITTMER, DP .
JOURNAL OF MICROCOLUMN SEPARATIONS, 1994, 6 (05) :515-524
[6]   Ionization of vapor molecules by an electrospray cloud [J].
de la Mora, Juan Fernandez .
INTERNATIONAL JOURNAL OF MASS SPECTROMETRY, 2011, 300 (2-3) :182-193
[7]   Optimisation of secondary electrospray ionisation (SESI) for the trace determination of gas-phase volatile organic compounds [J].
Dillon, Leonard A. ;
Stone, Victoria N. ;
Croasdell, Laura A. ;
Fielden, Peter R. ;
Goddard, Nicholas J. ;
Thomas, C. L. Paul .
ANALYST, 2010, 135 (02) :306-314
[8]   ELECTROSPRAY IONIZATION FOR MASS-SPECTROMETRY OF LARGE BIOMOLECULES [J].
FENN, JB ;
MANN, M ;
MENG, CK ;
WONG, SF ;
WHITEHOUSE, CM .
SCIENCE, 1989, 246 (4926) :64-71
[9]  
Fuerstenau S. D., 1994, THESIS YALE U NEW HA
[10]   Tandem Differential Mobility Analysis-Mass Spectrometry Reveals Partial Gas-Phase Collapse of the GroEL Complex [J].
Hogan, Christopher J., Jr. ;
Ruotolo, Brandon T. ;
Robinson, Carol V. ;
de la Mora, Juan Fernandez .
JOURNAL OF PHYSICAL CHEMISTRY B, 2011, 115 (13) :3614-3621