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Size-dependent Molecular Characteristics and Possible Sources of Organic Aerosols at a Coastal New Particle Formation Hotspot of East China
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  • Huan Yu,
  • Yibei Wan,
  • Xiangpeng Huang,
  • Xinlei Ge,
  • Bin Jiang,
  • Yuhong Liao,
  • Qian Yan,
  • Qin Shuai,
  • Hang Xiao
Huan Yu
China University of Geosciences

Corresponding Author:[email protected]

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Yibei Wan
China University of Geosciences
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Xiangpeng Huang
Nanjing University of Information Science & Technology
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Xinlei Ge
Nanjing University of Information Science & Technology
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Bin Jiang
Guangzhou Institute of Geochemistry, CAS
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Yuhong Liao
Guangzhou Institute of Geochemistry, CAS
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Qian Yan
China University of Geosciences
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Qin Shuai
China University of Geosciences
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Hang Xiao
Institute of Urban Environment, Chinese Academy of Sciences
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Abstract

We investigated size-dependent molecular characteristics of coastal organic aerosols from < 0.032 μm to 3.2 μm at a new particle formation (NPF) hotspot of east China by using Fourier transform-ion cyclotron resonance mass spectrometry (FT-ICR-MS). Strong connection between C20-33HhOo/C18,30HhOoNn compounds in particles smaller than 0.10 μm and the VOCs emitted from local intertidal macroalgae suggests that the organic compounds (OC) in ultrafine particles are formed probably via the gas-phase oxidation of long-chain fatty aldehydes or acids, followed by particle-phase accretion reactions or imine formation during the coastal NPF events. In 0.18-0.56 μm particles, dominant C8-C20 CHO, CHON, CHOS and CHONS compounds (maximum: C10 or C15) are suggested most likely to be terpene oxidation products. Highly oxygenated compounds with 0.6 ≤ H/C ≤ 1.5 and 0.67 ≤ O/C ≤ 1.2 reside mostly in 0.18-0.56 μm particles, accounting for 5% of the OC formulas in this size range. Iodinated OC are subsequently formed via electrophilic substitution of non-iodinated OC by iodine cations in iodine-rich particles. CHN and Cl/Br-containing OC account altogether for only 1-4% of total OC intensity. As a result of the above compound distribution, the intensity weighted unsaturation degree and carbon oxidation state of OC increase with particle size. The distribution of aromatic compounds (i.e. Aromaticity Index > 0.5) is bimodal with peaks in 0.056-0.18 μm and 1.0-3.2 μm. In addition, our study observed higher unsaturation degree, carbon oxidation state and aromaticity of OC in coastal PM2.5 than inland urban PM2.5 in the same region.