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The Imminent Data Desert: The Future of Stratospheric Monitoring in a Rapidly Changing World

  • Ross J. Salawitch
  • , Jessica B. Smith
  • , Henry Selkirk
  • , Krzysztof Wargan
  • , Martyn P. Chipperfield
  • , Ryan Hossaini
  • , Pieternel F. Levelt
  • , Nathaniel J. Livesey
  • , Laura A. McBride
  • , Luis F. Millán
  • , Elisabeth Moyer
  • , Michelle L. Santee
  • , Mark R. Schoeberl
  • , Susan Solomon
  • , Kane Stone
  • , Helen M. Worden
  • University of Maryland, College Park
  • Center for Nanoscale Systems, Harvard University Cambridge MA USA
  • Agile Decision Sciences, Falls Church, VA
  • Science Systems and Applications, Inc., Lanham, Maryland 20706, USA
  • School of Mathematics, University of Leeds , Leeds, LS2 9JT, United Kingdom
  • Kavli Institute of Nanoscience Delft, Delft University of Technology, 2600 GA, Delft, The Netherlands
  • Jet Propulsion Laboratory, California Institute of Technology
  • Science and Technology Corporation, Columbia, MD
  • University of Chicago
  • Department of Mathematics, Massachusetts Institute of Technology, Cambridge, MA, USA.
  • NSF National Center for Atmospheric Research, Boulder, CO

Research output: Contribution to Journal/MagazineJournal articlepeer-review

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Abstract

The Atmospheric Chemistry Experiment-Fourier Transform Spectrometer (ACE-FTS) on SCISAT-1 and Microwave Limb Sounder (MLS) on NASA’s Aura satellite have contributed significantly to understanding the impacts of human activities on the stratospheric ozone layer. The two-decade-long data record from these instruments has allowed quantification of ozone depletion caused by human-released ozone-depleting substances, the effects of extreme natural events like major volcanic eruptions including Hunga in 2022, as well as events amplified by human-caused climate change such as wildfires that inject material into the stratosphere, as happened over Australia in early 2020. Both platforms are nearing the end of their operational lifetimes, and their decommissioning will cause a substantial gap in the measurement of critical atmospheric components, including water vapor, inorganic chlorine species, and tracers of stratospheric transport. This upcoming “data desert” poses significant challenges for monitoring the recovery of the ozone layer and assessing the effects on stratospheric composition of future extreme events, threats posed by increases in space debris from satellite burn-up, and the possible injection of stratospheric aerosol to mitigate global warming. The lack of confirmed future missions that can provide daily near-global profile measurements of stratospheric composition highlights the need for observational strategies to bridge this impending gap. This paper discusses the essential role of ACE-FTS and MLS in advancing our understanding of the stratosphere, the impact of data loss after the cessation of one or both instruments, and the urgency of developing strategies for mitigating the impact of these observational losses at a time marked by dramatic changes in the stratosphere due to human and natural factors.
Original languageEnglish
Article numberE540
Number of pages24
JournalBulletin of the American Meteorological Society
DOIs
Publication statusPublished - 1/03/2025

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