Author
Listed:
- Luca Artiglia
(Paul Scherrer Institut
Paul Scherrer Institut)
- Jacinta Edebeli
(Paul Scherrer Institut
ETH Zürich)
- Fabrizio Orlando
(Paul Scherrer Institut)
- Shuzhen Chen
(Paul Scherrer Institut
ETH Zürich)
- Ming-Tao Lee
(Paul Scherrer Institut
Stockholm University)
- Pablo Corral Arroyo
(Paul Scherrer Institut
University of Bern)
- Anina Gilgen
(Paul Scherrer Institut
ETH Zürich)
- Thorsten Bartels-Rausch
(Paul Scherrer Institut)
- Armin Kleibert
(Paul Scherrer Institut)
- Mario Vazdar
(Rudjer Bošković Institute)
- Marcelo Andres Carignano
(Hamad Bin Khalifa University)
- Joseph S. Francisco
(University of Nebraska-Lincoln)
- Paul B. Shepson
(Purdue University)
- Ivan Gladich
(Hamad Bin Khalifa University)
- Markus Ammann
(Paul Scherrer Institut)
Abstract
Oxidation of bromide in aqueous environments initiates the formation of molecular halogen compounds, which is important for the global tropospheric ozone budget. In the aqueous bulk, oxidation of bromide by ozone involves a [Br•OOO−] complex as intermediate. Here we report liquid jet X-ray photoelectron spectroscopy measurements that provide direct experimental evidence for the ozonide and establish its propensity for the solution-vapour interface. Theoretical calculations support these findings, showing that water stabilizes the ozonide and lowers the energy of the transition state at neutral pH. Kinetic experiments confirm the dominance of the heterogeneous oxidation route established by this precursor at low, atmospherically relevant ozone concentrations. Taken together, our results provide a strong case of different reaction kinetics and mechanisms of reactions occurring at the aqueous phase-vapour interface compared with the bulk aqueous phase.
Suggested Citation
Luca Artiglia & Jacinta Edebeli & Fabrizio Orlando & Shuzhen Chen & Ming-Tao Lee & Pablo Corral Arroyo & Anina Gilgen & Thorsten Bartels-Rausch & Armin Kleibert & Mario Vazdar & Marcelo Andres Carigna, 2017.
"A surface-stabilized ozonide triggers bromide oxidation at the aqueous solution-vapour interface,"
Nature Communications, Nature, vol. 8(1), pages 1-8, December.
Handle:
RePEc:nat:natcom:v:8:y:2017:i:1:d:10.1038_s41467-017-00823-x
DOI: 10.1038/s41467-017-00823-x
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