Literature DB >> 22249506

Gas-phase reactions of aryl radicals with 2-butyne: experimental and theoretical investigation employing the N-methyl-pyridinium-4-yl radical cation.

A K Y Lam1, C Li, G Khairallah, B B Kirk, S J Blanksby, A J Trevitt, U Wille, R A J O'Hair, G da Silva.   

Abstract

Aromatic radicals form in a variety of reacting gas-phase systems, where their molecular weight growth reactions with unsaturated hydrocarbons are of considerable importance. We have investigated the ion-molecule reaction of the aromatic distonic N-methyl-pyridinium-4-yl (NMP) radical cation with 2-butyne (CH(3)C≡CCH(3)) using ion trap mass spectrometry. Comparison is made to high-level ab initio energy surfaces for the reaction of NMP and for the neutral phenyl radical system. The NMP radical cation reacts rapidly with 2-butyne at ambient temperature, due to the apparent absence of any barrier. The activated vinyl radical adduct predominantly dissociates via loss of a H atom, with lesser amounts of CH(3) loss. High-resolution Fourier transform ion cyclotron resonance (FT-ICR) mass spectrometry allows us to identify small quantities of the collisionally deactivated reaction adduct. Statistical reaction rate theory calculations (master equation/RRKM theory) on the NMP+2-butyne system support our experimental findings, and indicate a mechanism that predominantly involves an allylic resonance-stabilized radical formed via H atom shuttling between the aromatic ring and the C(4) side-chain, followed by cyclization and/or low-energy H atom β-scission reactions. A similar mechanism is demonstrated for the neutral phenyl radical (Ph˙)+2-butyne reaction, forming products that include 3-methylindene. The collisionally deactivated reaction adduct is predicted to be quenched in the form of a resonance-stabilized methylphenylallyl radical. Experiments using a 2,5-dichloro substituted methyl-pyridiniumyl radical cation revealed that in this case CH(3) loss from the 2-butyne adduct is favoured over H atom loss, verifying the key role of ortho H atoms, and the shuttling mechanism, in the reactions of aromatic radicals with alkynes. As well as being useful phenyl radical analogues, pyridiniumyl radical cations may form in the ionosphere of Titan, where they could undergo rapid molecular weight growth reactions to yield polycyclic aromatic nitrogen hydrocarbons (PANHs).

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Year:  2012        PMID: 22249506     DOI: 10.1039/c2cp22970f

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  3 in total

1.  Gas-Phase Synthesis and Reactivity of Ligated Group 10 Ions in the Formal +1 Oxidation State.

Authors:  Kim Greis; Yang Yang; Allan J Canty; Richard A J O'Hair
Journal:  J Am Soc Mass Spectrom       Date:  2019-06-10       Impact factor: 3.109

Review 2.  Properties and reactivity of gaseous distonic radical ions with aryl radical sites.

Authors:  Peggy E Williams; Bartłomiej J Jankiewicz; Linan Yang; Hilkka I Kenttämaa
Journal:  Chem Rev       Date:  2013-08-29       Impact factor: 60.622

3.  Using distonic radical ions to probe the chemistry of key combustion intermediates: the case of the benzoxyl radical anion.

Authors:  Cong Li; Adrian K Y Lam; George N Khairallah; Jonathan M White; Richard A J O'Hair; Gabriel da Silva
Journal:  J Am Soc Mass Spectrom       Date:  2013-03-20       Impact factor: 3.109

  3 in total

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