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Corona Discharge and Field Electron Emission in Ambient Air Using a Sharp Metal Needle: Formation and Reactivity of CO(3)(−•) and O(2)(−•)

CO(3)(−•) and O(2)(−•) are known to be strong oxidizing reagents in biological systems. CO(3)(−•) in particular can cause serious damage to DNA and proteins by H(•) abstraction reactions. However, H(•) abstraction of CO(3)(−•) in the gas phase has not yet been reported. In this work we report on gas...

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Autores principales: Hiraoka, Kenzo, Rankin-Turner, Stephanie, Ninomiya, Satoshi, Shimada, Haruo, Kinoshita, Kazumasa, Yamabe, Shinichi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Mass Spectrometry Society of Japan 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8697365/
https://www.ncbi.nlm.nih.gov/pubmed/34993049
http://dx.doi.org/10.5702/massspectrometry.A0100
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author Hiraoka, Kenzo
Rankin-Turner, Stephanie
Ninomiya, Satoshi
Shimada, Haruo
Kinoshita, Kazumasa
Yamabe, Shinichi
author_facet Hiraoka, Kenzo
Rankin-Turner, Stephanie
Ninomiya, Satoshi
Shimada, Haruo
Kinoshita, Kazumasa
Yamabe, Shinichi
author_sort Hiraoka, Kenzo
collection PubMed
description CO(3)(−•) and O(2)(−•) are known to be strong oxidizing reagents in biological systems. CO(3)(−•) in particular can cause serious damage to DNA and proteins by H(•) abstraction reactions. However, H(•) abstraction of CO(3)(−•) in the gas phase has not yet been reported. In this work we report on gas-phase ion/molecule reactions of CO(3)(−•) and O(2)(−•) with various molecules. CO(3)(−•) was generated by the corona discharge of an O(2) reagent gas using a cylindrical tube ion source. O(2)(−•) was generated by the application of a 15 kHz high frequency voltage to a sharp needle in ambient air at the threshold voltage for the appearance of an ion signal. In the reactions of CO(3)(−•), a decrease in signal intensities of CO(3)(−•) accompanied by the simultaneous increase of that of HCO(3)(−) was observed when organic compounds with H–C bond energies lower than ∼100 kcal mol(−1) such as n-hexane, cyclohexane, methanol, ethanol, 1-propanol, 2-propanol, and toluene were introduced into the ion source. This clearly indicates the occurrence of H(•) abstraction. O(2)(−•) abstracts H(+) from acid molecules such as formic, acetic, trifluoroacetic, nitric and amino acids. Gas-phase CO(3)(−•) may play a role as a strong oxidizing reagent as it does in the condensed phase. The major discharge product CO(3)(−•) in addition to O(2)(−•), O(3), and NO(x)(•) that are formed in ambient air may cause damage to biological systems.
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spelling pubmed-86973652022-01-05 Corona Discharge and Field Electron Emission in Ambient Air Using a Sharp Metal Needle: Formation and Reactivity of CO(3)(−•) and O(2)(−•) Hiraoka, Kenzo Rankin-Turner, Stephanie Ninomiya, Satoshi Shimada, Haruo Kinoshita, Kazumasa Yamabe, Shinichi Mass Spectrom (Tokyo) Original Article CO(3)(−•) and O(2)(−•) are known to be strong oxidizing reagents in biological systems. CO(3)(−•) in particular can cause serious damage to DNA and proteins by H(•) abstraction reactions. However, H(•) abstraction of CO(3)(−•) in the gas phase has not yet been reported. In this work we report on gas-phase ion/molecule reactions of CO(3)(−•) and O(2)(−•) with various molecules. CO(3)(−•) was generated by the corona discharge of an O(2) reagent gas using a cylindrical tube ion source. O(2)(−•) was generated by the application of a 15 kHz high frequency voltage to a sharp needle in ambient air at the threshold voltage for the appearance of an ion signal. In the reactions of CO(3)(−•), a decrease in signal intensities of CO(3)(−•) accompanied by the simultaneous increase of that of HCO(3)(−) was observed when organic compounds with H–C bond energies lower than ∼100 kcal mol(−1) such as n-hexane, cyclohexane, methanol, ethanol, 1-propanol, 2-propanol, and toluene were introduced into the ion source. This clearly indicates the occurrence of H(•) abstraction. O(2)(−•) abstracts H(+) from acid molecules such as formic, acetic, trifluoroacetic, nitric and amino acids. Gas-phase CO(3)(−•) may play a role as a strong oxidizing reagent as it does in the condensed phase. The major discharge product CO(3)(−•) in addition to O(2)(−•), O(3), and NO(x)(•) that are formed in ambient air may cause damage to biological systems. The Mass Spectrometry Society of Japan 2021 2021-12-25 /pmc/articles/PMC8697365/ /pubmed/34993049 http://dx.doi.org/10.5702/massspectrometry.A0100 Text en Copyright © 2021 Kenzo Hiraoka, Stephanie Rankin-Turner, Satoshi Ninomiya, Haruo Shimada, Kazumasa Kinoshita, and Shinichi Yamabe. https://creativecommons.org/licenses/by/2.5/This is an open-access article distributed under the terms of Creative Commons Attribution Non-Commercial 4.0 International License, which permits use, distribution, and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Article
Hiraoka, Kenzo
Rankin-Turner, Stephanie
Ninomiya, Satoshi
Shimada, Haruo
Kinoshita, Kazumasa
Yamabe, Shinichi
Corona Discharge and Field Electron Emission in Ambient Air Using a Sharp Metal Needle: Formation and Reactivity of CO(3)(−•) and O(2)(−•)
title Corona Discharge and Field Electron Emission in Ambient Air Using a Sharp Metal Needle: Formation and Reactivity of CO(3)(−•) and O(2)(−•)
title_full Corona Discharge and Field Electron Emission in Ambient Air Using a Sharp Metal Needle: Formation and Reactivity of CO(3)(−•) and O(2)(−•)
title_fullStr Corona Discharge and Field Electron Emission in Ambient Air Using a Sharp Metal Needle: Formation and Reactivity of CO(3)(−•) and O(2)(−•)
title_full_unstemmed Corona Discharge and Field Electron Emission in Ambient Air Using a Sharp Metal Needle: Formation and Reactivity of CO(3)(−•) and O(2)(−•)
title_short Corona Discharge and Field Electron Emission in Ambient Air Using a Sharp Metal Needle: Formation and Reactivity of CO(3)(−•) and O(2)(−•)
title_sort corona discharge and field electron emission in ambient air using a sharp metal needle: formation and reactivity of co(3)(−•) and o(2)(−•)
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8697365/
https://www.ncbi.nlm.nih.gov/pubmed/34993049
http://dx.doi.org/10.5702/massspectrometry.A0100
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