How to Use Ion-Molecule Reaction Data Previously Obtained in Helium at 300 K in the New Generation of Selected Ion Flow Tube Mass Spectrometry Instruments Operating in Nitrogen at 393 K

. 2023 Jul 25 ; 95 (29) : 11157-11163. [epub] 20230716

Status PubMed-not-MEDLINE Jazyk angličtina Země Spojené státy americké Médium print-electronic

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid37454354

Selected ion flow tube mass spectrometry (SIFT-MS) instruments have significantly developed since this technique was introduced more than 20 years ago. Most studies of the ion-molecule reaction kinetics that are essential for accurate analyses of trace gases and vapors in air and breath were conducted in He carrier gas at 300 K, while the new SIFT-MS instruments (optimized to quantify concentrations down to parts per trillion by volume) operate with N2 carrier gas at 393 K. Thus, we pose the question of how to reuse the data from the extensive body of previous literature using He at room temperature in the new instruments operating with N2 carrier gas at elevated temperatures. Experimentally, we found the product ions to be qualitatively similar, although there were differences in the branching ratios, and some reaction rate coefficients were lower in the heated N2 carrier gas. The differences in the reaction kinetics may be attributed to temperature, an electric field in the current flow tubes, and the change from He to N2 carrier gas. These results highlight the importance of adopting an updated reaction kinetics library that accounts for the new instruments' specific conditions. In conclusion, almost all previous rate coefficients may be used after adjustment for higher temperatures, while some product ion branching ratios need to be updated.

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Smith D.; Španěl P.; Demarais N.; Langford V. S.; McEwan M. J. Recent developments and applications of selected ion flow tube mass spectrometry, SIFT-MS. Mass Spectrom. Rev. 2023, 12, e21835 10.1002/mas.21835. PubMed DOI PMC

Smith D.; Španěl P. Ambient analysis of trace compounds in gaseous media by SIFT-MS. Analyst 2011, 136, 2009–2032. 10.1039/c1an15082k. PubMed DOI

Španěl P.; Smith D. Quantification of volatile metabolites in exhaled breath by selected ion flow tube mass spectrometry, SIFT-MS. Clin. Mass Spectrom. 2020, 16, 18–24. 10.1016/j.clinms.2020.02.001. PubMed DOI PMC

Španěl P.; Smith D. Progress in SIFT-MS: Breath analysis and other applications. Mass Spectrom. Rev. 2011, 30, 236–267. 10.1002/mas.20303. PubMed DOI

Lehnert A. S.; Behrendt T.; Ruecker A.; Pohnert G.; Trumbore S. E. SIFT-MS optimization for atmospheric trace gas measurements at varying humidity. Atmos. Meas. Tech. 2020, 13, 3507–3520. 10.5194/amt-13-3507-2020. DOI

Wagner R. L.; Farren N. J.; Davison J.; Young S.; Hopkins J. R.; Lewis A. C.; Carslaw D. C.; Shaw M. D. Application of a mobile laboratory using a selected-ion flow-tube mass spectrometer (SIFT-MS) for characterisation of volatile organic compounds and atmospheric trace gases. Atmos. Meas. Tech. 2021, 14, 6083–6100. 10.5194/amt-14-6083-2021. DOI

Ghislain M.; Reyrolle M.; Sotiropoulos J.-M.; Pigot T.; Plaisance H.; Le Bechec M. Study of the Chemical Ionization of Organophosphate Esters in Air Using Selected Ion Flow Tube–Mass Spectrometry for Direct Analysis. J. Am. Soc. Mass Spectrom. 2022, 33, 865–874. 10.1021/jasms.2c00060. PubMed DOI

Langford V. S.; Padayachee D.; McEwan M. J.; Barringer S. A. Comprehensive odorant analysis for on-line applications using selected ion flow tube mass spectrometry (SIFT-MS). Flavour Fragrance J. 2019, 34, 393–410. 10.1002/ffj.3516. DOI

Olivares A.; Dryahina K.; Navarro J. L.; Flores M.; Smith D.; Španěl P. Selected Ion Flow Tube-Mass Spectrometry for Absolute Quantification of Aroma Compounds in the Headspace of Dry Fermented Sausages. Anal. Chem. 2010, 82, 5819–5829. 10.1021/ac1009723. PubMed DOI

Bacquart T.; Perkins M.; Ferracci V.; Martin N. A.; Resner K.; Ward M. K. M.; Cassidy N.; Hook J. B.; Brewer P. J.; Irvine J. T. C.; Connor P. A.; Murugan A. Production and stability of low amount fraction of formaldehyde in hydrogen gas standards. Int. J. Hydrogen Energy 2018, 43, 6711–6722. 10.1016/j.ijhydene.2018.02.026. DOI

Den W.; Bai H. L.; Kang Y. H. Organic airborne molecular contamination in semiconductor fabrication clean rooms—A review. J. Electrochem. Soc. 2006, 153, G149–G159. 10.1149/1.2147286. DOI

Španěl P.; Swift S. J.; Dryahina K.; Smith D. Relative influence of helium and nitrogen carrier gases on analyte ion branching ratios in SIFT-MS. Int. J. Mass Spectrom. 2022, 476, 116835. 10.1016/j.ijms.2022.116835. DOI

Smith D.; McEwan M. J.; Španěl P. Understanding Gas Phase Ion Chemistry Is the Key to Reliable Selected Ion Flow Tube-Mass Spectrometry Analyses. Anal. Chem. 2020, 92, 12750–12762. 10.1021/acs.analchem.0c03050. PubMed DOI

Španěl P.; Dryahina K.; Smith D. A general method for the calculation of absolute trace gas concentrations in air and breath from selected ion flow tube mass spectrometry data. Int. J. Mass Spectrom. 2006, 249–250, 230–239. 10.1016/j.ijms.2005.12.024. DOI

Španěl P.; Smith D. Advances in On-line Absolute Trace Gas Analysis by SIFT-MS. Curr. Anal. Chem. 2013, 9, 525–539. 10.2174/15734110113099990017. DOI

Smith D.; Adams N. G. The selected ion flow tube(SIFT): studies of ion-neutral reactions. Adv. At. Mol. Phys. 1988, 24, 1–49. 10.1016/S0065-2199(08)60229-8. DOI

Swift S. J.; Smith D.; Dryahina K.; Omezzine Gnioua M.; Španěl P. Kinetics of reactions of NH PubMed DOI

Hera D.; Langford V. S.; McEwan M. J.; McKellar T. I.; Milligan D. B. Negative Reagent Ions for Real Time Detection Using SIFT-MS. Environments 2017, 4, 16. 10.3390/environments4010016. DOI

Španěl P.; Smith D. Dissociation of H DOI

Smith D.; Pysanenko A.; Španěl P. Ionic diffusion and mass discrimination effects in the new generation of short flow tube SIFT-MS instruments. Int. J. Mass Spectrom. 2009, 281, 15–23. 10.1016/j.ijms.2008.11.007. DOI

Ausloos P. J.Kinetics of ion-molecule reactions; Springer, 1978; Vol. 40.

Španěl P.; Smith D. SIFT studies of the reactions of H DOI

Španěl P.; Ji Y. F.; Smith D. SIFT studies of the reactions of H DOI

Španěl P.; Smith D. SIFT studies of the reactions of H DOI

Smith D.; Chippendale T. W. E.; Španěl P. Reactions of the selected ion flow tube mass spectrometry reagent ions H PubMed DOI

Španěl P.; Zabka J.; Zymak I.; Smith D. Selected ion flow tube study of the reactions of H PubMed DOI

Smith D.; Španěl P.; Dryahina K. H DOI

Brůhová Michalčíková R.; Španěl P. A selected ion flow tube study of the ion molecule association reactions of protonated (MH DOI

Spesyvyi A.; Sovová K.; Smith D.; Španěl P. Increase of the Charge Transfer Rate Coefficients for NO PubMed DOI

Spesyvyi A.; Smith D.; Španěl P. Ion chemistry at elevated ion-molecule interaction energies in a selected ion flow-drift tube: reactions of H PubMed DOI

Su T.; Chesnavich W. J. Parametrization of the ion–polar molecule collision rate constant by trajectory calculations. J. Chem. Phys. 1982, 76, 5183–5185. 10.1063/1.442828. DOI

The National Institute of Standards and Technology (NIST) . Chemistry WebBook, SRD 69. http://webbook.nist.gov/.

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