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A global view of the stratospheric background, volcanic and wildfire aerosol in the CALIOP era (2006–2023)

Martinsson, Bengt G. LU ; Friberg, Johan LU and Sporre, Moa K. LU orcid (2026) In Atmospheric Chemistry and Physics 26(12). p.8999-9016
Abstract

This study deals with the stratospheric aerosol during the 17 years of lidar measurements with CALIOP aboard the CALIPSO satellite. To obtain extinction from the backscattering measurements, we estimated the lidar ratios of the main aerosol injections into the stratosphere. The stratospheric background is estimated by making a subdivision of the stratosphere into nine parts, spanned by three latitude and altitude intervals, reaching background conditions individually at different times. The extracted background estimate shows excellent agreement with SAGE II solar occultation measurements in the volcanically quiescent period 1998–2000. Our results show that 70 % of the background aerosol in the deep Brewer-Dobson (dBD) branch is formed... (More)

This study deals with the stratospheric aerosol during the 17 years of lidar measurements with CALIOP aboard the CALIPSO satellite. To obtain extinction from the backscattering measurements, we estimated the lidar ratios of the main aerosol injections into the stratosphere. The stratospheric background is estimated by making a subdivision of the stratosphere into nine parts, spanned by three latitude and altitude intervals, reaching background conditions individually at different times. The extracted background estimate shows excellent agreement with SAGE II solar occultation measurements in the volcanically quiescent period 1998–2000. Our results show that 70 % of the background aerosol in the deep Brewer-Dobson (dBD) branch is formed above 19 km altitude, indicating strong influence of carbonyl sulfide on the stratospheric background aerosol. The stratosphere was clearly affected by 15 volcanic eruptions and 5 wildfires. Their combined aerosol load affected the Southern extratropics, tropics and Northern extratropics almost equally, and the altitude distribution shows that the shallow Brewer-Dobson branch was most affected (43 %) followed by the dBD (31 %) and lowermost stratosphere (26 %). The most important events in order of maximum AOD were the Hunga Ha'apai eruption (2022), Australian wildfires (2019–20) and the eruptions of Raikoke (2019), Sarychev (2009) and Nabro (2011). These events induced strong variability in the yearly average global stratospheric aerosol optical depth (AOD), which ranged from 0.0057 (background) to 0.016. CALIOP provided invaluable data for stratospheric aerosol climatologies during its 17 years of operation.

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Contribution to journal
publication status
published
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in
Atmospheric Chemistry and Physics
volume
26
issue
12
pages
18 pages
publisher
Copernicus GmbH
external identifiers
  • scopus:105043803891
ISSN
1680-7316
DOI
10.5194/acp-26-8999-2026
language
English
LU publication?
yes
additional info
Publisher Copyright: © 2026 Bengt G. Martinsson et al.
id
313fe148-1118-4580-8c27-ac98bdcfddc9
date added to LUP
2026-09-10 15:16:05
date last changed
2026-09-14 14:25:24
@article{313fe148-1118-4580-8c27-ac98bdcfddc9,
  abstract     = {{<p>This study deals with the stratospheric aerosol during the 17 years of lidar measurements with CALIOP aboard the CALIPSO satellite. To obtain extinction from the backscattering measurements, we estimated the lidar ratios of the main aerosol injections into the stratosphere. The stratospheric background is estimated by making a subdivision of the stratosphere into nine parts, spanned by three latitude and altitude intervals, reaching background conditions individually at different times. The extracted background estimate shows excellent agreement with SAGE II solar occultation measurements in the volcanically quiescent period 1998–2000. Our results show that 70 % of the background aerosol in the deep Brewer-Dobson (dBD) branch is formed above 19 km altitude, indicating strong influence of carbonyl sulfide on the stratospheric background aerosol. The stratosphere was clearly affected by 15 volcanic eruptions and 5 wildfires. Their combined aerosol load affected the Southern extratropics, tropics and Northern extratropics almost equally, and the altitude distribution shows that the shallow Brewer-Dobson branch was most affected (43 %) followed by the dBD (31 %) and lowermost stratosphere (26 %). The most important events in order of maximum AOD were the Hunga Ha'apai eruption (2022), Australian wildfires (2019–20) and the eruptions of Raikoke (2019), Sarychev (2009) and Nabro (2011). These events induced strong variability in the yearly average global stratospheric aerosol optical depth (AOD), which ranged from 0.0057 (background) to 0.016. CALIOP provided invaluable data for stratospheric aerosol climatologies during its 17 years of operation.</p>}},
  author       = {{Martinsson, Bengt G. and Friberg, Johan and Sporre, Moa K.}},
  issn         = {{1680-7316}},
  language     = {{eng}},
  month        = {{06}},
  number       = {{12}},
  pages        = {{8999--9016}},
  publisher    = {{Copernicus GmbH}},
  series       = {{Atmospheric Chemistry and Physics}},
  title        = {{A global view of the stratospheric background, volcanic and wildfire aerosol in the CALIOP era (2006–2023)}},
  url          = {{http://dx.doi.org/10.5194/acp-26-8999-2026}},
  doi          = {{10.5194/acp-26-8999-2026}},
  volume       = {{26}},
  year         = {{2026}},
}