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Impact of in-cloud aqueous processes on the chemical compositions and morphology of individual atmospheric aerosols

  • Yuzhen Fu*
  • , Qinhao Lin
  • , Guohua Zhang
  • , Yuxiang Yang
  • , Yiping Yang
  • , Xiufeng Lian
  • , Long Peng
  • , Feng Jiang
  • , Xinhui Bi
  • , Lei Li
  • , Yuanyuan Wang
  • , Duohong Chen
  • , Jie Ou
  • , Xinming Wang
  • , Jianxi Zhu
  • , Guoying Sheng
  • *Corresponding author for this work
  • CAS - Guangzhou Institute of Geochemistry
  • University of Chinese Academy of Sciences
  • Guangdong-Hong Kong-Macao Joint Laboratory for Environmental Pollution and Control
  • Jinan University
  • Zhejiang University
  • Guangdong Environmental Monitoring Center
  • Shaoguan Environmental Monitoring Center

Research output: Contribution to journalArticlepeer-review

Abstract

The composition, morphology, and mixing structure of individual cloud residues (RES) and interstitial particles (INT) at a mountaintop site were investigated. Eight types of particles were identified, including sulfate-rich (S-rich), S-organic matter (OM), aged soot, aged mineral dust, aged fly ash, aged metal, refractory, and aged refractory mixture. A shift of dominant particle types from S-rich (29 %) and aged soot (27 %) in the INT to aged refractory mixture (23 %) and S-OM (22 %) in the RES is observed. In particular, particles with organic shells are enriched in the RES (27 %) relative to the INT (12 %). Our results highlight that the formation of more oxidized organic matter in the cloud contributes to the existence of organic shells after cloud processing. The fractal dimension (<span classCombining double low line"inline-formula">Df</span>), a morphologic parameter to represent the branching degree of particles, for soot particles in the RES (1.82 <span classCombining double low line"inline-formula">±</span> 0.12) is lower than that in the INT (2.11 <span classCombining double low line"inline-formula">±</span> 0.09), which indicates that in-cloud processes may result in less compact soot. This research emphasizes the role of in-cloud processes in the chemistry and microphysical properties of individual particles. Given that organic coatings may determine the particle hygroscopicity, activation ability, and heterogeneous chemical reactivity, the increase of OM-shelled particles upon in-cloud processes should have considerable implications.

Original languageEnglish
Pages (from-to)14063-14075
Number of pages13
JournalAtmospheric Chemistry and Physics
Volume20
Issue number22
DOIs
StatePublished - 20 Nov 2020
Externally publishedYes

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