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PMID: 21838231 Published · ppublish English Journal Article

Electrically compensated Fourier transform ion cyclotron resonance cell for complex mixture mass analysis.

Analytical chemistry ·Vol. 83 ·No. 17 ·2011-09-01 ·Pages 6907-10

Kaiser NK, Savory JJ, McKenna AM, Quinn JP, Hendrickson CL, Marshall AG

Abstract

Complex natural organic mixtures such as petroleum require ultrahigh mass spectral resolution to separate and identify thousands of elemental compositions. Here, we incorporate a custom-built, voltage-compensated ICR cell for Fourier transform ion cyclotron resonance mass spectrometry (FTICR MS), based on a prior design by Tolmachev to produce optimal mass resolution. The compensated ICR cell installed in a custom-built 9.4 T FTICR mass spectrometer consists of seven cylindrical segments with axial proportions designed to generate a dc trapping potential that approaches an ideal three-dimensional axial quadrupolar potential. However, the empirically optimized compensation voltages do not correspond to the most quadrupolar trapping field. The compensation electrodes minimize variation in the reduced cyclotron frequency by balancing imperfections in the magnetic and electric field. The optimized voltages applied to compensation electrodes preserve ion cloud coherence for longer transient duration by approximately a factor of 2, enabling separation and identification of isobaric species (compounds with the same nominal mass but different exact mass) common in petroleum, such as C(3) vs SH(4) (separated by 3.4 mDa) and SH(3)(13)C vs (12)C(4) (separated by 1.1 mDa). The improved performance of the ICR cell provides more symmetric peak shape and better mass measurement accuracy. A positive ion atmospheric pressure photoionization (APPI) petroleum spectrum yields more than 26,000 assigned peaks, Fourier-limited resolving power of 800,000 at m/z 500 (6.6 s transient duration), and 124 part per billion root mean square (rms) error. The tunability of the compensation electrodes is critical for optimal performance.

Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Kaiser Nathan K
National High Magnetic Field Laboratory, Florida State University, 1800 East Paul Dirac Drive, Tallahassee, Florida 32310-4005, USA.
Savory Joshua J
McKenna Amy M
Quinn John P
Hendrickson Christopher L
Marshall Alan G
Article Info
Journal
Analytical chemistry
Abbr.
Anal Chem
ISSN
1520-6882
Published
2011-09-01
Epub
2011-00-12
Pages
6907-10
Language
English
Region
United States
NLM ID
0370536
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