Detectability of solid particle injections into the stratosphere with satellite solar occultation instruments

Stratospheric aerosol injections (SAI) have been proposed as a potential climate intervention to mitigate some effects of global warming. This method involves the idea of injecting sulphur dioxide into the stratosphere. Other ideas include the injection of solid particles, like alumina and calcite, as these particles absorb less terrestrial infrared radiation and scatter solar radiation more efficiently. The aim of the study is to investigate the detectability of the continuous injection of 5 Tg yr −1 of alumina and calcite with typical satellite solar occultation instruments using SOCOL-AERv2 (SOlar Climate Ozone Links-Atmospheric and Environmental Research Incorporation version 2) model simulation results and the SCIATRAN radiative transfer model. Vertically resolved retrievals of the stratospheric aerosol extinction coefficient at 565 nm demonstrate that, under the assumptions made, it is possible to detect the injection of solid particles into the stratosphere and that the corresponding SAI signals can be distinguished from natural variability under near-background conditions, which is essential for the observational verification of potential SAI perturbations.

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Journal
Atmospheric chemistry and physics
Published
2026-09-16
DOI
https://doi.org/10.5194/acp-26-13055-2026
Primary Topic
Climate Change and Geoengineering
Type
article
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Detectability of solid particle injections into the stratosphere with satellite solar occultation instruments

Sandro Vattioni, Anna Lange, Christian von Savigny, Alexei Rozanov et al.
Atmospheric chemistry and physics
Climate Change and Geoengineering
article

Detectability of solid particle injections into the stratosphere with satellite solar occultation instruments

Sandro Vattioni, Anna Lange, Christian von Savigny, Alexei Rozanov, Ulrike Niemeier, John Andrew Dykema
article en

Abstract

Stratospheric aerosol injections (SAI) have been proposed as a potential climate intervention to mitigate some effects of global warming. This method involves the idea of injecting sulphur dioxide into the stratosphere. Other ideas include the injection of solid particles, like alumina and calcite, as these particles absorb less terrestrial infrared radiation and scatter solar radiation more efficiently. The aim of the study is to investigate the detectability of the continuous injection of 5 Tg yr −1 of alumina and calcite with typical satellite solar occultation instruments using SOCOL-AERv2 (SOlar Climate Ozone Links-Atmospheric and Environmental Research Incorporation version 2) model simulation results and the SCIATRAN radiative transfer model. Vertically resolved retrievals of the stratospheric aerosol extinction coefficient at 565 nm demonstrate that, under the assumptions made, it is possible to detect the injection of solid particles into the stratosphere and that the corresponding SAI signals can be distinguished from natural variability under near-background conditions, which is essential for the observational verification of potential SAI perturbations.

Atmospheric chemistry and physicsVol. 26(18)
Universitätsmedizin Greifswald (DE), Universität Greifswald (DE)
Climate action
Openalex Percentile: Top 14%
Climate Change and Geoengineering
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Detectability of solid particle injections into the stratosphere with satellite solar occultation instruments — Sandro Vattioni, Anna Lange, et al. · Atmospheric chemistry and physics (2026) | TGRS Research Map | TGRS