Understanding projected uncertainty of Southern Ocean sea salt aerosol in CESM1-LE: role of internal variability

Abstract Southern Ocean (SO) sea salt aerosol is key to Earth’s energy budget, but its future changes are highly uncertain. Here using a 40-member ensemble from the Community Earth System Model Large Ensemble (CESM1-LE) project, we find that projected SO sea salt is modulated by internal climate variability both locally in the SO and remotely from the tropical Pacific. The leading mode of inter-member diversity displays a zonally homogenous pattern associated with the Southern Annular Mode due to its impact on future westerly poleward intensification. The second largest source of inter-member uncertainty relates to El Niño-Southern Oscillation (ENSO). In particular, as El Niño and La Niña are not symmetric, the cumulative ENSO impact on SO winds exhibits a meridional dipole in the south Pacific, such that a stronger future ENSO with more extreme El Niño events will induce a larger zonally heterogenous distribution of SO sea salt. Our results uncover an important role of ENSO nonlinearity in projected SO sea salt aerosol distribution.

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Publication Details

Journal
Geoscience Letters
Published
2026-09-05
DOI
https://doi.org/10.1186/s40562-026-00505-x
Primary Topic
Climate variability and models
Type
article
Field-Weighted Citation Impact
0.00

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article

Understanding projected uncertainty of Southern Ocean sea salt aerosol in CESM1-LE: role of internal variability

Wenju Cai, Tao Geng, Jie Gao
Geoscience Letters
Climate variability and models
article

Understanding projected uncertainty of Southern Ocean sea salt aerosol in CESM1-LE: role of internal variability

Wenju Cai, Tao Geng, Jie Gao
article en

Abstract

Abstract Southern Ocean (SO) sea salt aerosol is key to Earth’s energy budget, but its future changes are highly uncertain. Here using a 40-member ensemble from the Community Earth System Model Large Ensemble (CESM1-LE) project, we find that projected SO sea salt is modulated by internal climate variability both locally in the SO and remotely from the tropical Pacific. The leading mode of inter-member diversity displays a zonally homogenous pattern associated with the Southern Annular Mode due to its impact on future westerly poleward intensification. The second largest source of inter-member uncertainty relates to El Niño-Southern Oscillation (ENSO). In particular, as El Niño and La Niña are not symmetric, the cumulative ENSO impact on SO winds exhibits a meridional dipole in the south Pacific, such that a stronger future ENSO with more extreme El Niño events will induce a larger zonally heterogenous distribution of SO sea salt. Our results uncover an important role of ENSO nonlinearity in projected SO sea salt aerosol distribution.

Geoscience LettersVol. 13(1)
Qingdao National Laboratory for Marine Science and Technology (CN), Laoshan Laboratory, Ocean University of China (CN)
Department of Science and Technology of Shandong Province, National Natural Science Foundation of China, Ocean University of China, Taishan Scholar Project of Shandong Province
Life below water
Openalex Percentile: Top 13%
Climate variability and models
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Understanding projected uncertainty of Southern Ocean sea salt aerosol in CESM1-LE: role of internal variability — Wenju Cai, Tao Geng, et al. · Geoscience Letters (2026) | TGRS Research Map | TGRS