Literature DB >> 22229734

Product detection of the CH radical reaction with acetaldehyde.

Fabien Goulay1, Adam J Trevitt, John D Savee, Jordy Bouwman, David L Osborn, Craig A Taatjes, Kevin R Wilson, Stephen R Leone.   

Abstract

The reaction of the methylidyne radical (CH) with acetaldehyde (CH(3)CHO) is studied at room temperature and at a pressure of 4 Torr (533.3 Pa) using a multiplexed photoionization mass spectrometer coupled to the tunable vacuum ultraviolet synchrotron radiation of the Advanced Light Source at Lawrence Berkeley National Laboratory. The CH radicals are generated by 248 nm multiphoton photolysis of CHBr(3) and react with acetaldehyde in an excess of helium and nitrogen gas flow. Five reaction exit channels are observed corresponding to elimination of methylene (CH(2)), elimination of a formyl radical (HCO), elimination of carbon monoxide (CO), elimination of a methyl radical (CH(3)), and elimination of a hydrogen atom. Analysis of the photoionization yields versus photon energy for the reaction of CH and CD radicals with acetaldehyde and CH radical with partially deuterated acetaldehyde (CD(3)CHO) provides fine details about the reaction mechanism. The CH(2) elimination channel is found to preferentially form the acetyl radical by removal of the aldehydic hydrogen. The insertion of the CH radical into a C-H bond of the methyl group of acetaldehyde is likely to lead to a C(3)H(5)O reaction intermediate that can isomerize by β-hydrogen transfer of the aldehydic hydrogen atom and dissociate to form acrolein + H or ketene + CH(3), which are observed directly. Cycloaddition of the radical onto the carbonyl group is likely to lead to the formation of the observed products, methylketene, methyleneoxirane, and acrolein.

Entities:  

Year:  2012        PMID: 22229734     DOI: 10.1021/jp2113126

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  2 in total

1.  O-bearing complex organic molecules at the cyanopolyyne peak of TMC-1: detection of C2H3CHO, C2H3OH, HCOOCH3, and CH3OCH3.

Authors:  M Agúndez; N Marcelino; B Tercero; C Cabezas; P de Vicente; J Cernicharo
Journal:  Astron Astrophys       Date:  2021-05-05       Impact factor: 5.802

2.  Theoretical insights into the reaction mechanisms between 2,3,7,8-tetrachlorodibenzofuran and the methylidyne radical.

Authors:  Wenjing Wei; Weihua Wang; Kaining Xu; Wenling Feng; Xiaoping Li; Ping Li
Journal:  RSC Adv       Date:  2018-06-08       Impact factor: 3.361

  2 in total

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