Literature DB >> 26191544

Broadscale resolving power performance of a high precision uniform field ion mobility-mass spectrometer.

Jody C May1, James N Dodds, Ruwan T Kurulugama, George C Stafford, John C Fjeldsted, John A McLean.   

Abstract

An extensive study of two current ion mobility resolving power theories ("conditional" and "semi-empirical") was undertaken using a recently developed drift tube ion mobility-mass spectrometer. The current study investigates the quantitative agreement between experiment and theory at reduced pressure (4 Torr) for a wide range of initial ion gate widths (100 to 500 μs), and ion mobility values (K0 from 0.50 to 3.0 cm(2) V(-1) s(-1)) representing measurements obtained in helium, nitrogen, and carbon dioxide drift gas. Results suggest that the conditional resolving power theory deviates from experimental results for low mobility ions (e.g., high mass analytes) and for initial ion gate widths beyond 200 μs. A semi-empirical resolving power theory provided close-correlation of predicted resolving powers to experimental results across the full range of mobilities and gate widths investigated. Interpreting the results from the semi-empirical theory, the performance of the current instrumentation was found to be highly linear for a wide range of analytes, with optimal resolving powers being accessible for a narrow range of drift fields between 14 and 17 V cm(-1). While developed using singly-charged ion mobility data, preliminary results suggest that the semi-empirical theory has broader applicability to higher-charge state systems.

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Year:  2015        PMID: 26191544      PMCID: PMC4586486          DOI: 10.1039/c5an00923e

Source DB:  PubMed          Journal:  Analyst        ISSN: 0003-2654            Impact factor:   4.616


  17 in total

1.  Resolution enhancement of ion mobility spectrometry by improving the three-zone properties of the Bradbury-Nielsen gate.

Authors:  Yongzhai Du; Weiguo Wang; Haiyang Li
Journal:  Anal Chem       Date:  2012-01-17       Impact factor: 6.986

2.  Resistive glass IM-TOFMS.

Authors:  Kimberly Kaplan; Stephan Graf; Christian Tanner; Marc Gonin; Katrin Fuhrer; Richard Knochenmuss; Prabha Dwivedi; Herbert H Hill
Journal:  Anal Chem       Date:  2010-10-22       Impact factor: 6.986

3.  Ion mobility spectrometry-mass spectrometry performance using electrodynamic ion funnels and elevated drift gas pressures.

Authors:  Erin Shammel Baker; Brian H Clowers; Fumin Li; Keqi Tang; Aleksey V Tolmachev; David C Prior; Mikhail E Belov; Richard D Smith
Journal:  J Am Soc Mass Spectrom       Date:  2007-04-06       Impact factor: 3.109

4.  Enhanced ion utilization efficiency using an electrodynamic ion funnel trap as an injection mechanism for ion mobility spectrometry.

Authors:  Brian H Clowers; Yehia M Ibrahim; David C Prior; William F Danielson; Mikhail E Belov; Richard D Smith
Journal:  Anal Chem       Date:  2008-01-01       Impact factor: 6.986

5.  Effect of space charge on resolving power and ion loss in ion mobility spectrometry.

Authors:  Adrian V Mariano; Wansheng Su; Samar K Guharay
Journal:  Anal Chem       Date:  2009-05-01       Impact factor: 6.986

6.  Direct determination of heavy elements in biological media by spark source mass spectrometry.

Authors:  A W Fitchett; R P Buck; P Mushak
Journal:  Anal Chem       Date:  1974-05       Impact factor: 6.986

7.  High-pressure ion mobility spectrometry.

Authors:  Eric J Davis; Prabha Dwivedi; Maggie Tam; William F Siems; Herbert H Hill
Journal:  Anal Chem       Date:  2009-05-01       Impact factor: 6.986

8.  Coulombic effects in ion mobility spectrometry.

Authors:  Aleksey V Tolmachev; Brian H Clowers; Mikhail E Belov; Richard D Smith
Journal:  Anal Chem       Date:  2009-06-15       Impact factor: 6.986

Review 9.  Ion mobility-mass spectrometry: time-dispersive instrumentation.

Authors:  Jody C May; John A McLean
Journal:  Anal Chem       Date:  2015-01-09       Impact factor: 6.986

10.  Conformational ordering of biomolecules in the gas phase: nitrogen collision cross sections measured on a prototype high resolution drift tube ion mobility-mass spectrometer.

Authors:  Jody C May; Cody R Goodwin; Nichole M Lareau; Katrina L Leaptrot; Caleb B Morris; Ruwan T Kurulugama; Alex Mordehai; Christian Klein; William Barry; Ed Darland; Gregor Overney; Kenneth Imatani; George C Stafford; John C Fjeldsted; John A McLean
Journal:  Anal Chem       Date:  2014-02-04       Impact factor: 6.986

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  22 in total

1.  Determination of ion mobility collision cross sections for unresolved isomeric mixtures using tandem mass spectrometry and chemometric deconvolution.

Authors:  Brett Harper; Elizabeth K Neumann; Sarah M Stow; Jody C May; John A McLean; Touradj Solouki
Journal:  Anal Chim Acta       Date:  2016-07-28       Impact factor: 6.558

2.  Evaluating Separation Selectivity and Collision Cross Section Measurement Reproducibility in Helium, Nitrogen, Argon, and Carbon Dioxide Drift Gases for Drift Tube Ion Mobility-Mass Spectrometry.

Authors:  Caleb B Morris; Jody C May; Katrina L Leaptrot; John A McLean
Journal:  J Am Soc Mass Spectrom       Date:  2019-03-18       Impact factor: 3.109

3.  Chiral separation of diastereomers of the cyclic nonapeptides vasopressin and desmopressin by uniform field ion mobility mass spectrometry.

Authors:  Shawn T Phillips; James N Dodds; Berkley M Ellis; Jody C May; John A McLean
Journal:  Chem Commun (Camb)       Date:  2018-08-21       Impact factor: 6.222

4.  Rapid Characterization of Per- and Polyfluoroalkyl Substances (PFAS) by Ion Mobility Spectrometry-Mass Spectrometry (IMS-MS).

Authors:  James N Dodds; Zachary R Hopkins; Detlef R U Knappe; Erin S Baker
Journal:  Anal Chem       Date:  2020-02-24       Impact factor: 6.986

5.  Evaluating lipid mediator structural complexity using ion mobility spectrometry combined with mass spectrometry.

Authors:  Jennifer E Kyle; Noor Aly; Xueyun Zheng; Kristin E Burnum-Johnson; Richard D Smith; Erin S Baker
Journal:  Bioanalysis       Date:  2018-03-01       Impact factor: 2.681

6.  Correlating Resolving Power, Resolution, and Collision Cross Section: Unifying Cross-Platform Assessment of Separation Efficiency in Ion Mobility Spectrometry.

Authors:  James N Dodds; Jody C May; John A McLean
Journal:  Anal Chem       Date:  2017-10-30       Impact factor: 6.986

7.  Conformational Landscapes of Ubiquitin, Cytochrome c, and Myoglobin: Uniform Field Ion Mobility Measurements in Helium and Nitrogen Drift Gas.

Authors:  Jody C May; Ewa Jurneczko; Sarah M Stow; Isabel Kratochvil; Stefan Kalkhof; John A McLean
Journal:  Int J Mass Spectrom       Date:  2017-10-07       Impact factor: 1.986

Review 8.  Ion Mobility Collision Cross Section Compendium.

Authors:  Jody C May; Caleb B Morris; John A McLean
Journal:  Anal Chem       Date:  2016-12-28       Impact factor: 6.986

9.  A Customizable Flow Injection System for Automated, High Throughput, and Time Sensitive Ion Mobility Spectrometry and Mass Spectrometry Measurements.

Authors:  Daniel J Orton; Malak M Tfaily; Ronald J Moore; Brian L LaMarche; Xueyun Zheng; Thomas L Fillmore; Rosalie K Chu; Karl K Weitz; Matthew E Monroe; Ryan T Kelly; Richard D Smith; Erin S Baker
Journal:  Anal Chem       Date:  2017-12-13       Impact factor: 6.986

10.  Coupling IR-MALDESI with Drift Tube Ion Mobility-Mass Spectrometry for High-Throughput Screening and Imaging Applications.

Authors:  Måns Ekelöf; James Dodds; Sitora Khodjaniyazova; Kenneth P Garrard; Erin S Baker; David C Muddiman
Journal:  J Am Soc Mass Spectrom       Date:  2020-02-11       Impact factor: 3.109

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