Light Absorption Enhancement of Black Carbon Aerosol Constrained by Particle Morphology
Author(s) -
Yu Wu,
Tianhai Cheng,
Dantong Liu,
J. D. Allan,
Lijuan Zheng,
Hao Chen
Publication year - 2018
Publication title -
environmental science and technology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.851
H-Index - 397
eISSN - 1520-5851
pISSN - 0013-936X
DOI - 10.1021/acs.est.8b00636
Subject(s) - aerosol , radiative forcing , carbon black , atmospheric sciences , particle (ecology) , climate model , forcing (mathematics) , absorption (acoustics) , environmental science , carbon fibers , radiative transfer , particle size , chemical physics , climate change , chemistry , materials science , meteorology , physics , optics , ecology , natural rubber , composite number , composite material , organic chemistry , biology
The radiative forcing of black carbon aerosol (BC) is one of the largest sources of uncertainty in climate change assessments. Contrasting results of BC absorption enhancement ( E abs ) after aging are estimated by field measurements and modeling studies, causing ambiguous parametrizations of BC solar absorption in climate models. Here we quantify E abs using a theoretical model parametrized by the complex particle morphology of BC in different aging scales. We show that E abs continuously increases with aging and stabilizes with a maximum of ∼3.5, suggesting that previous seemingly contrast results of E abs can be explicitly described by BC aging with corresponding particle morphology. We also report that current climate models using Mie Core-Shell model may overestimate E abs at a certain aging stage with a rapid rise of E abs , which is commonly observed in the ambient. A correction coefficient for this overestimation is suggested to improve model predictions of BC climate impact.
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