Literature DB >> 27790905

Rate Constant of the Reaction between CH3O2 Radicals and OH Radicals Revisited.

Emmanuel Assaf1, Bo Song1, Alexandre Tomas2,3, Coralie Schoemaecker1, Christa Fittschen1.   

Abstract

The reaction between CH3O2 and OH radicals has been studied in a laser photolysis cell using the reaction of F atoms with CH4 and H2O for the simultaneous generation of both radicals, with F atoms generated through 248 nm photolysis of XeF2. An experimental setup combining cw-Cavity Ring Down Spectroscopy (cw-CRDS) and high repetition rate laser-induced fluorescence (LIF) to a laser photolysis cell has been used. The absolute concentration of CH3O2 was measured by cw-CRDS, while the relative concentration of OH(v = 0) radicals was determined by LIF. To remove dubiety from the quantification of CH3O2 by cw-CRDS in the near-infrared, its absorption cross section has been determined at 7489.16 cm-1 using two different methods. A rate constant of k1 = (1.60 ± 0.4) × 10-10 cm3 s-1 has been determined at 295 K, nearly a factor of 2 lower than an earlier determination from our group ((2.8 ± 1.4) × 10-10 cm3 s-1) using CH3I photolysis as a precursor. Quenching of electronically excited I atoms (from CH3I photolysis) in collision with OH(v = 0) is suspected to be responsible for a bias in the earlier, fast rate constant.

Entities:  

Year:  2016        PMID: 27790905     DOI: 10.1021/acs.jpca.6b07704

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


  3 in total

1.  Formaldehyde in the Tropical Western Pacific: Chemical sources and sinks, convective transport, and representation in CAM-Chem and the CCMI models.

Authors:  Daniel C Anderson; Julie M Nicely; Glenn M Wolfe; Thomas F Hanisco; Ross J Salawitch; Timothy P Canty; Russell R Dickerson; Eric C Apel; Sunil Baidar; Thomas J Bannan; Nicola J Blake; Dexian Chen; Barbara Dix; Rafael P Fernandez; Samuel R Hall; Rebecca S Hornbrook; L Gregory Huey; Beatrice Josse; Patrick Jöckel; Douglas E Kinnison; Theodore K Koenig; Michael LeBreton; Virginie Marécal; Olaf Morgenstern; Luke D Oman; Laura L Pan; Carl Percival; David Plummer; Laura E Revell; Eugene Rozanov; Alfonso Saiz-Lopez; Andrea Stenke; Kengo Sudo; Simone Tilmes; Kirk Ullmann; Rainer Volkamer; Andrew J Weinheimer; Guang Zeng
Journal:  J Geophys Res Atmos       Date:  2017-10-26       Impact factor: 4.261

2.  Mechanism and kinetics of the atmospheric reaction of 1,3,5-trimethylbenzene bicyclic peroxy radical with OH.

Authors:  Xiaoxiao Lin; Zhenli Yang; Hui Yu; Yanbo Gai; Weijun Zhang
Journal:  RSC Adv       Date:  2019-10-11       Impact factor: 4.036

3.  The reaction of hydroxyl and methylperoxy radicals is not a major source of atmospheric methanol.

Authors:  Rebecca L Caravan; M Anwar H Khan; Judit Zádor; Leonid Sheps; Ivan O Antonov; Brandon Rotavera; Krupa Ramasesha; Kendrew Au; Ming-Wei Chen; Daniel Rösch; David L Osborn; Christa Fittschen; Coralie Schoemaecker; Marius Duncianu; Asma Grira; Sebastien Dusanter; Alexandre Tomas; Carl J Percival; Dudley E Shallcross; Craig A Taatjes
Journal:  Nat Commun       Date:  2018-10-19       Impact factor: 14.919

  3 in total

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