The potential impact of ClOx radical complexes on polar stratospheric ozone loss processes

The importance of radical-molecule complexes for atmospheric chemistry has been discussed in recent years. In particular, the existence of a ClO·O 2 and ClO x water radical complexes like ClO·H 2 O, OClO·H 2 O, OClO·(H 2 O) 2 , and ClOO·H 2 O could play a role in enhancing the ClO dimer (Cl 2 O 2 )...

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Published in:Atmospheric Chemistry and Physics
Main Authors: Vogel, B., Feng, W., Streibel, M., Müller, R.
Format: Text
Language:English
Published: 2018
Subjects:
Online Access:https://doi.org/10.5194/acp-6-3099-2006
https://www.atmos-chem-phys.net/6/3099/2006/
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spelling ftcopernicus:oai:publications.copernicus.org:acp3480 2023-05-15T15:15:59+02:00 The potential impact of ClOx radical complexes on polar stratospheric ozone loss processes Vogel, B. Feng, W. Streibel, M. Müller, R. 2018-06-28 application/pdf https://doi.org/10.5194/acp-6-3099-2006 https://www.atmos-chem-phys.net/6/3099/2006/ eng eng doi:10.5194/acp-6-3099-2006 https://www.atmos-chem-phys.net/6/3099/2006/ eISSN: 1680-7324 Text 2018 ftcopernicus https://doi.org/10.5194/acp-6-3099-2006 2019-12-24T09:58:50Z The importance of radical-molecule complexes for atmospheric chemistry has been discussed in recent years. In particular, the existence of a ClO·O 2 and ClO x water radical complexes like ClO·H 2 O, OClO·H 2 O, OClO·(H 2 O) 2 , and ClOO·H 2 O could play a role in enhancing the ClO dimer (Cl 2 O 2 ) formation and therefore may constitute an important intermediate in polar stratospheric ozone loss cycles. Model simulations performed with the Chemical Lagrangian Model of the Stratosphere (CLaMS) will be presented to study the role of radical complexes on polar stratospheric ozone loss processes. The model simulations are performed for the Arctic winter 2002/2003 at a level of 500 K potential temperature and the results are compared to observed ozone loss rates determined by the Match technique. Moreover, recently reported values for the equilibrium constant of the ClO dimer formation are used to restrict the number of possible model results caused by large uncertainties about radical complex chemistry. Our model simulations show that the potential impact of ClO·O 2 on polar ozone loss processes is small (dO 3 /dt≪0.5 ppb/sunlight h) provided that the ClO·O 2 complex is only weakly stable. Assuming that the binding energies of the ClO x water complexes are much higher than theoretically predicted an enhancement of the ozone loss rate by up to ≈0.5 ppb/sunlight h is simulated. Because it is unlikely that the ClO x water complexes are much more stable than predicted we conclude that these complexes have no impact on polar stratospheric ozone loss processes. Although large uncertainties about radical complex chemistry exist, our findings show that the potential impact of ClO x radical molecule complexes on polar stratospheric ozone loss processes is very small considering pure gas-phase chemistry. However the existence of ClO x radical-molecule complexes could possibly explain discrepancies for the equilibrium constant of the ClO dimer formation found between recent laboratory and stratospheric measurements. Text Arctic Copernicus Publications: E-Journals Arctic Atmospheric Chemistry and Physics 6 10 3099 3114
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description The importance of radical-molecule complexes for atmospheric chemistry has been discussed in recent years. In particular, the existence of a ClO·O 2 and ClO x water radical complexes like ClO·H 2 O, OClO·H 2 O, OClO·(H 2 O) 2 , and ClOO·H 2 O could play a role in enhancing the ClO dimer (Cl 2 O 2 ) formation and therefore may constitute an important intermediate in polar stratospheric ozone loss cycles. Model simulations performed with the Chemical Lagrangian Model of the Stratosphere (CLaMS) will be presented to study the role of radical complexes on polar stratospheric ozone loss processes. The model simulations are performed for the Arctic winter 2002/2003 at a level of 500 K potential temperature and the results are compared to observed ozone loss rates determined by the Match technique. Moreover, recently reported values for the equilibrium constant of the ClO dimer formation are used to restrict the number of possible model results caused by large uncertainties about radical complex chemistry. Our model simulations show that the potential impact of ClO·O 2 on polar ozone loss processes is small (dO 3 /dt≪0.5 ppb/sunlight h) provided that the ClO·O 2 complex is only weakly stable. Assuming that the binding energies of the ClO x water complexes are much higher than theoretically predicted an enhancement of the ozone loss rate by up to ≈0.5 ppb/sunlight h is simulated. Because it is unlikely that the ClO x water complexes are much more stable than predicted we conclude that these complexes have no impact on polar stratospheric ozone loss processes. Although large uncertainties about radical complex chemistry exist, our findings show that the potential impact of ClO x radical molecule complexes on polar stratospheric ozone loss processes is very small considering pure gas-phase chemistry. However the existence of ClO x radical-molecule complexes could possibly explain discrepancies for the equilibrium constant of the ClO dimer formation found between recent laboratory and stratospheric measurements.
format Text
author Vogel, B.
Feng, W.
Streibel, M.
Müller, R.
spellingShingle Vogel, B.
Feng, W.
Streibel, M.
Müller, R.
The potential impact of ClOx radical complexes on polar stratospheric ozone loss processes
author_facet Vogel, B.
Feng, W.
Streibel, M.
Müller, R.
author_sort Vogel, B.
title The potential impact of ClOx radical complexes on polar stratospheric ozone loss processes
title_short The potential impact of ClOx radical complexes on polar stratospheric ozone loss processes
title_full The potential impact of ClOx radical complexes on polar stratospheric ozone loss processes
title_fullStr The potential impact of ClOx radical complexes on polar stratospheric ozone loss processes
title_full_unstemmed The potential impact of ClOx radical complexes on polar stratospheric ozone loss processes
title_sort potential impact of clox radical complexes on polar stratospheric ozone loss processes
publishDate 2018
url https://doi.org/10.5194/acp-6-3099-2006
https://www.atmos-chem-phys.net/6/3099/2006/
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op_relation doi:10.5194/acp-6-3099-2006
https://www.atmos-chem-phys.net/6/3099/2006/
op_doi https://doi.org/10.5194/acp-6-3099-2006
container_title Atmospheric Chemistry and Physics
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