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The Influence of Iodine on the Antarctic Stratospheric Ozone Hole

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Specialty Science
Date 2022 Feb 8
PMID 35131938
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Abstract

The catalytic depletion of Antarctic stratospheric ozone is linked to anthropogenic emissions of chlorine and bromine. Despite its larger ozone-depleting efficiency, the contribution of ocean-emitted iodine to ozone hole chemistry has not been evaluated, due to the negligible iodine levels previously reported to reach the stratosphere. Based on the recently observed range (0.77 ± 0.1 parts per trillion by volume [pptv]) of stratospheric iodine injection, we use the Whole Atmosphere Community Climate Model to assess the role of iodine in the formation and recent past evolution of the Antarctic ozone hole. Our 1980-2015 simulations indicate that iodine can significantly impact the lower part of the Antarctic ozone hole, contributing, on average, 10% of the lower stratospheric ozone loss during spring (up to 4.2% of the total stratospheric column). We find that the inclusion of iodine advances the beginning and delays the closure stages of the ozone hole by 3 d to 5 d, increasing its area and mass deficit by 11% and 20%, respectively. Despite being present in much smaller amounts, and due to faster gas-phase photochemical reactivation, iodine can dominate (∼73%) the halogen-mediated lower stratospheric ozone loss during summer and early fall, when the heterogeneous reactivation of inorganic chlorine and bromine reservoirs is reduced. The stratospheric ozone destruction caused by 0.77 pptv of iodine over Antarctica is equivalent to that of 3.1 (4.6) pptv of biogenic very short-lived bromocarbons during spring (rest of sunlit period). The relative contribution of iodine to future stratospheric ozone loss is likely to increase as anthropogenic chlorine and bromine emissions decline following the Montreal Protocol.

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References
1.
Koenig T, Baidar S, Campuzano-Jost P, Cuevas C, Dix B, Fernandez R . Quantitative detection of iodine in the stratosphere. Proc Natl Acad Sci U S A. 2020; 117(4):1860-1866. PMC: 6994984. DOI: 10.1073/pnas.1916828117. View

2.
Legrand M, McConnell J, Preunkert S, Arienzo M, Chellman N, Gleason K . Alpine ice evidence of a three-fold increase in atmospheric iodine deposition since 1950 in Europe due to increasing oceanic emissions. Proc Natl Acad Sci U S A. 2018; 115(48):12136-12141. PMC: 6275475. DOI: 10.1073/pnas.1809867115. View

3.
Kim K, Ju J, Kim B, Chung H, Vetrakova L, Heger D . Nitrite-Induced Activation of Iodate into Molecular Iodine in Frozen Solution. Environ Sci Technol. 2019; 53(9):4892-4900. DOI: 10.1021/acs.est.8b06638. View

4.
Saunders R, Kumar R, MacDonald S, Plane J . Insights into the photochemical transformation of iodine in aqueous systems: humic acid photosensitized reduction of iodate. Environ Sci Technol. 2012; 46(21):11854-61. DOI: 10.1021/es3030935. View

5.
Oman L, Douglass A, Salawitch R, Canty T, Ziemke J, Manyin M . The Effect of Representing Bromine from VSLS on the Simulation and Evolution of Antarctic Ozone. Geophys Res Lett. 2018; 43(18):9869-9876. PMC: 5854488. DOI: 10.1002/2016GL070471. View