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HERO ID
603011
Reference Type
Journal Article
Title
Secondary organic aerosol from alpha-pinene ozonolysis in dynamic chamber system
Author(s)
Chen, X; Hopke, PK
Year
2009
Is Peer Reviewed?
Yes
Journal
Indoor Air
ISSN:
0905-6947
EISSN:
1600-0668
Volume
19
Issue
4
Page Numbers
335-345
Language
English
PMID
19500172
DOI
10.1111/j.1600-0668.2009.00596.x
Web of Science Id
WOS:000268029700007
Abstract
P>The formation of secondary organic aerosol (SOA) produced from alpha-pinene ozonolysis was examined using a dynamic chamber system that allowed the simulation of ventilated indoor environments. Particle-bound reactive species (ROS) including peroxides, peroxy radicals and ions that could penetrate into the lungs and deliver oxidative stress to the tissue causing damage were quantitatively determined from filters collected from the chamber. ROS was determined using dichlorofluorescin such that resulting fluorescent intensities were converted to equivalent H2O2 concentrations. Measured ROS concentrations at alpha-pinene and ozone concentrations relevant to prevailing indoor concentrations ranged from 1.1 to 7.2 nmol/m(3) of H2O2. Particle density was also determined from scanning mobility particle sizer measurements and mass collected onto filters to obtain volume and mass concentration, respectively. Partitioning theory reveals the fact that with increased SOA mass loading, even for more volatile species, partitioning onto particle phase is favored relative to low SOA mass loadings. Other recent studies have found changes in composition of the SOA depending on the precursor VOC concentrations. This behavior was reflected in these experiments in terms of a change of density. Measured densities ranged from 1.07 to 1.69 g/cm(3).Practical Implications A better understanding of the formation mechanism of secondary organic aerosol generated from indoor chemistry allows us to evaluate and predict the exposure under such environments. Measurements of particle-bound reactive oxygen species (ROS) shed light on potential adverse health effect associated upon exposure to particles.
Keywords
alpha-Pinene; SOA; ROS; Density; Indoor aerosol
Tags
•
ISA-Lead (2013 Final Project Page)
Considered
Atmospheric and Exposure Sciencies
•
ISA-Ozone (2013 Final Project Page)
Considered
Atm/Exp Science
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