Global quantification of the dispersion effect with POLDER satellite data

H Hengqi Wang Y Yiran Peng A Antonio Di Noia H Huazhe Shang H Husi Letu B Bastiaan van Diedenhoven O Otto P. Hasekamp Y Yangang Liu J Johannes Quaas (German Centre for Integrative Biodiversity Research (iDiv), Halle-Jena-Leipzig)

Abstract

Abstract Increased aerosols can modify the shape of the cloud Particle Size Distribution (PSD), thereby influencing the radiative properties of clouds, known as the Dispersion Effect (DE). However, a global, observation-based quantification of its impact on Aerosol-Cloud Interactions (ACI) is lacking, leading to DE being typically ignored in satellite-based estimates of ACI forcing. Here we propose a physics-based method that combines polarimetric satellite data on cloud PSD to achieve global observational quantification of DE’s impact on ACI in liquid-phase stratiform clouds. Globally, DE offsets ACI changes induced by droplet number concentration variation and liquid water path adjustment by 7% and −1.4%, respectively. Furthermore, a parameterization based on the global dataset of PSD shape parameters is developed to improve DE estimation in large-scale models. Both the quantification and parameterization enhance our understanding of DE and facilitate the inclusion of this non-negligible impact of DE on ACI in estimating aerosol climate forcing.

Article Details

Volume / Issue Vol. 16, Issue 1
Published August 02, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (9)

H

Hengqi Wang

Y

Yiran Peng

A

Antonio Di Noia

H

Huazhe Shang

H

Husi Letu

B

Bastiaan van Diedenhoven

O

Otto P. Hasekamp

Y

Yangang Liu

J

Johannes Quaas

German Centre for Integrative Biodiversity Research (iDiv), Halle-Jena-Leipzig