Observation-constrained clear-sky direct radiative forcing of black carbon containing aerosols reveals distinct radiative regimes across urban Asia

Black carbon (BC) aerosols exert a strong yet uncertain influence on the atmospheric energy balance, yet their radiative forcing estimates remain poorly constrained. Current top-down and bottom-up approaches remain limited in resolving how microphysical evolution and column properties jointly govern radiative responses. To address this limitation, we develop an observation-constrained framework that integrates satellite and ground-based remote sensing observations through a dual-constraint approach. Spectral single-scattering albedo observations from TROPOMI and AERONET/SONET, together with their uncertainty bounds, are first used to constrain physically plausible BC size and mixing state across UV-VIS-NIR wavelengths. These particle-scale solutions are then screened using MODIS-MAIAC multi-waveband aerosol optical depth observations and their associated upper uncertainty bounds, which constrain column extinction and loading. This dual-constraint strategy links particle-scale microphysical and column-scale extinction consistency within a unified observation-based framework. The resulting set of BC optical properties is propagated through radiative transfer modeling, supported by ancillary satellite-derived atmospheric parameters. The framework is applied over two contrasting urban environments in Asia - a polycentric urban agglomerate and a monocentric megacity. It produces spatially resolved, observation-constrained estimates of clear-sky direct radiative forcing (DRF) for BC-containing aerosols at 0.05° × 0.05°. The study reveals that, despite comparable atmospheric heating (15.5 ± 1.9 W m −2 , 18.2 ± 1.3 W m −2 , ~0.3 K day −1 ), both regions exhibit distinct top-of-atmosphere responses with persistent cooling (−17.4 ± 2.6 W m −2 , −15.0 ± 1.2 W m −2 ). A sign reversal to weak positive TOA forcing occurs only over Xuzhou, reaching ~ +0.4 W m −2 , whereas Dhaka remains negative throughout the analyzed distribution. Diagnostic analyses further show that BC DRF does not scale with column loading or aerosol optical depth alone, but exhibits a bifurcation into distinct regimes characterized by coupled variation in column loading, particle microphysics and spectral absorption. Coupled variability analysis further reveals a regionally distinct organization of radiative responses. These responses are embedded within coherent multivariate patterns of microphysical optical, and column variability.Overall, the study demonstrates a reproducible pathway for leveraging multi-platform remote sensing observations to resolve regionally distinct BC radiative impacts. These results also provide an observational basis for evaluating how region-specific BC mitigation strategies may alter regional radiative forcing.

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Journal
Remote Sensing of Environment
Published
2026-09-18
DOI
https://doi.org/10.1016/j.rse.2026.115673
Primary Topic
Atmospheric chemistry and aerosols
Type
article
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Observation-constrained clear-sky direct radiative forcing of black carbon containing aerosols reveals distinct radiative regimes across urban Asia

Kai Qin, Lingxiao Lu, Cheng Fan, Shahid Uz Zaman et al.
Remote Sensing of Environment
Atmospheric chemistry and aerosols
article

Observation-constrained clear-sky direct radiative forcing of black carbon containing aerosols reveals distinct radiative regimes across urban Asia

Kai Qin, Lingxiao Lu, Cheng Fan, Shahid Uz Zaman, Jason Blake Cohen, Pravash Tiwari, Zhewen Liu, Ralph A. Kahn, Luoyao Guan, Oleg Dubovik, Simone Lolli, Shuo Wang, Hongrui Gao, Zhengqiang Li
article en

Abstract

Black carbon (BC) aerosols exert a strong yet uncertain influence on the atmospheric energy balance, yet their radiative forcing estimates remain poorly constrained. Current top-down and bottom-up approaches remain limited in resolving how microphysical evolution and column properties jointly govern radiative responses. To address this limitation, we develop an observation-constrained framework that integrates satellite and ground-based remote sensing observations through a dual-constraint approach. Spectral single-scattering albedo observations from TROPOMI and AERONET/SONET, together with their uncertainty bounds, are first used to constrain physically plausible BC size and mixing state across UV-VIS-NIR wavelengths. These particle-scale solutions are then screened using MODIS-MAIAC multi-waveband aerosol optical depth observations and their associated upper uncertainty bounds, which constrain column extinction and loading. This dual-constraint strategy links particle-scale microphysical and column-scale extinction consistency within a unified observation-based framework. The resulting set of BC optical properties is propagated through radiative transfer modeling, supported by ancillary satellite-derived atmospheric parameters. The framework is applied over two contrasting urban environments in Asia - a polycentric urban agglomerate and a monocentric megacity. It produces spatially resolved, observation-constrained estimates of clear-sky direct radiative forcing (DRF) for BC-containing aerosols at 0.05° × 0.05°. The study reveals that, despite comparable atmospheric heating (15.5 ± 1.9 W m −2 , 18.2 ± 1.3 W m −2 , ~0.3 K day −1 ), both regions exhibit distinct top-of-atmosphere responses with persistent cooling (−17.4 ± 2.6 W m −2 , −15.0 ± 1.2 W m −2 ). A sign reversal to weak positive TOA forcing occurs only over Xuzhou, reaching ~ +0.4 W m −2 , whereas Dhaka remains negative throughout the analyzed distribution. Diagnostic analyses further show that BC DRF does not scale with column loading or aerosol optical depth alone, but exhibits a bifurcation into distinct regimes characterized by coupled variation in column loading, particle microphysics and spectral absorption. Coupled variability analysis further reveals a regionally distinct organization of radiative responses. These responses are embedded within coherent multivariate patterns of microphysical optical, and column variability.Overall, the study demonstrates a reproducible pathway for leveraging multi-platform remote sensing observations to resolve regionally distinct BC radiative impacts. These results also provide an observational basis for evaluating how region-specific BC mitigation strategies may alter regional radiative forcing.

Remote Sensing of EnvironmentVol. 347
Centre National de la Recherche Scientifique (FR), Goddard Space Flight Center (US), Bangladesh University of Engineering and Technology (BD), Chinese Academy of Sciences (CN), China University of Mining and Technology (CN), Laboratory for Atmospheric and Space Physics (US), National Research Council - Institute of Methodologies for Environmental Analysis (IT), Laboratoire d'Optique Atmosphérique (FR), Aerospace Information Research Institute (CN)
Sustainable cities and communities
Openalex Percentile: Top 15%
Atmospheric chemistry and aerosols
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