Published May 21, 2008 | Version v1
Journal article

The NO+O3 reaction: A triple oxygen isotope perspective on the reaction dynamics and atmospheric implications for the transfer of the ozone isotope anomaly

  • 1. Laboratoire de Glaciologie et Geophysique de l'Environnement (LGGE), CNRS-Universite Joseph Fourier Grenoble, 38400 Grenoble (France)
  • 2. Physical Research Laboratory, Navrangpura, 380009 Ahmedabad (India)
  • 3. Laboratoire Interuniversitaire des Systemes Atmospheriques (LISA), CNRS-Universite Paris 7-Denis Diderot, 94010 Creteil (France)

Description

Atmospheric nitrate shows a large oxygen isotope anomaly (Δ 17O), characterized by an excess enrichment of 17O over 18O, similar to the ozone molecule. Modeling and observations assign this specific isotopic composition mainly to the photochemical steady state that exists in the atmosphere between ozone and nitrate precursors, namely, the nitrogen oxides (NOx=NO+NO2). However, this transfer is poorly quantified and is built on unverified assumptions about which oxygen atoms of ozone are transferred to NOx, greatly weakening any interpretation of the nitrate oxygen isotopic composition in terms of chemical reaction pathways and the oxidation state of the atmosphere. With the aim to improve our understanding and quantify how nitrate inherits this unusual isotopic composition, we have carried out a triple isotope study of the reaction NO+O3. Using ozone intramolecular isotope distributions available in the literature, we have found that the central atom of the ozone is abstracted by NO with a probability of (8±5)%(±2σ) at room temperature. This result is at least qualitatively supported by dynamical reaction experiments, the non-Arrhenius behavior of the kinetic rate of this reaction, and the kinetic isotope fractionation factor. Finally, we have established the transfer function of the isotope anomaly of O3 to NO2, which is described by the linear relationship Δ 17O(NO2)=AxΔ 17O(O3)+B, with A=1.18±0.07(±1σ) and B=(6.6±1.5) per mille (±1σ). Such a relationship can be easily incorporated into models dealing with the propagation of the ozone isotope anomaly among oxygen-bearing species in the atmosphere and should help to better interpret the oxygen isotope anomaly of atmospheric nitrate in terms of its formation reaction pathways

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Chemical Physics
Journal Volume
128
Journal Issue
19
Journal Page Range
p. 194303-194303.12
ISSN
0021-9606
CODEN
JCPSA6

Optional Information

Notes
(c) 2008 American Institute of Physics