共 37 条
Formation of hydroxyl radicals from photolysis of secondary organic aerosol material
被引:73
作者:
Badali, K. M.
[1
]
Zhou, S.
[1
]
Aljawhary, D.
[1
]
Antinolo, M.
[1
]
Chen, W. J.
[1
]
Lok, A.
[1
]
Mungall, E.
[1
]
Wong, J. P. S.
[1
]
Zhao, R.
[1
]
Abbatt, J. P. D.
[1
]
机构:
[1] Univ Toronto, Toronto, ON M5S 3H6, Canada
基金:
加拿大自然科学与工程研究理事会;
关键词:
ATMOSPHERIC BROWN CARBON;
HYDROGEN-PEROXIDE;
PINENE OZONOLYSIS;
PARTICLES;
OXIDATION;
LIMONENE;
ABSORPTION;
CHEMISTRY;
CHAMBER;
INDOOR;
D O I:
10.5194/acp-15-7831-2015
中图分类号:
X [环境科学、安全科学];
学科分类号:
08 ;
0830 ;
摘要:
This paper demonstrates that OH radicals are formed by photolysis of secondary organic aerosol (SOA) material formed by terpene ozonolysis. The SOA is collected on filters, dissolved in water containing a radical trap (benzoic acid), and then exposed to ultraviolet light in a photochemical reactor. The OH formation rates, which are similar for both alpha-pinene and limonene SOA, are measured from the formation rate of p-hydroxybenzoic acid as measured using offline HPLC analysis. To evaluate whether the OH is formed by photolysis of H2O2 or organic hydroperoxides (ROOH), the peroxide content of the SOA was measured using the horseradish peroxidase-dichlorofluorescein (HRP-DCF) assay, which was calibrated using H2O2. The OH formation rates from SOA are 5 times faster than from the photolysis of H2O2 solutions whose concentrations correspond to the peroxide content of the SOA solutions, assuming that the HRP-DCF signal arises from H2O2 alone. The higher rates of OH formation from SOA are likely due to ROOH photolysis, but we cannot rule out a contribution from secondary processes as well. This result is substantiated by photolysis experiments conducted with t-butyl hydroperoxide and cumene hydroperoxide which produce over 3 times more OH than photolysis of equivalent concentrations of H2O2. Relative to the peroxide level in the SOA and assuming that the peroxides drive most of the ultraviolet absorption, the quantum yield for OH generation from alpha-pinene SOA is 0.8 +/- 0.4. This is the first demonstration of an efficient photolytic source of OH in SOA, one that may affect both cloud water and aerosol chemistry.
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页码:7831 / 7840
页数:10
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