| Literature DB >> 33736402 |
Jiaxing Sun1, Conghui Xie1, Weiqi Xu2, Chun Chen1, Nan Ma3, Wanyun Xu4, Lu Lei1, Zhijie Li1, Yao He1, Yanmei Qiu1, Qingqing Wang2, Xiaole Pan2, Hang Su5, Yafang Cheng6, Cheng Wu7, Pingqing Fu8, Zifa Wang9, Yele Sun10.
Abstract
The light absorption black carbon (BC) and brown carbon (BrC) are two important sources of uncertainties in radiative forcing estimate. Here we investigated the light absorption enhancement (Eabs) of BC due to coated materials at an urban (Beijing) and a rural site (Gucheng) in North China Plain (NCP) in winter 2019 by using a photoacoustic extinctiometer coupled with a thermodenuder. Our results showed that the average (±1σ) Eabs was 1.32 (±0.15) at the rural site, which was slightly higher than that at the urban site (1.24 ± 0.15). The dependence of Eabs on coating materials was found to be relatively limited at both sites. However, Eabs presented considerable increases as a function of relative humidity below 70%. Further analysis showed that Eabs during non-heating period in Beijing was mainly caused by secondary components, while it was dominantly contributed by enhanced primary emissions in heating season at both sites. In particular, aerosol particles mixed with coal combustion emissions had a large impact on Eabs (>1.40), while the fresh traffic emissions and freshly oxidized secondary OA (SOA) had limited Eabs (1.00-1.23). Although highly aged or aqueous-phase processed SOA coated on BC showed the largest Eabs, their contributions to the bulk absorption enhancement were generally small. We also quantified the absorption of BrC and source contributions. The results showed the BrC absorption at the rural site was nearly twice that of urban site, yet absorption Ångström exponents were similar. Multiple linear regression analysis highlighted the major sources of BrC being coal combustion emissions and photochemical SOA at both sites with additional biomass burning at the rural site. Overall, our results demonstrated the relatively limited winter light absorption enhancement of BC in different chemical environments in NCP, which needs be considered in regional climate models to improve BC radiative forcing estimates.Entities:
Keywords: Absorption enhancement; Black carbon; Brown carbon; Coal combustion; North China Plain
Year: 2021 PMID: 33736402 DOI: 10.1016/j.scitotenv.2020.144821
Source DB: PubMed Journal: Sci Total Environ ISSN: 0048-9697 Impact factor: 7.963