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Evidence of the water-cage effect on the photolysis of NO3- and FeOH2+, and its implications for the photochemistry at the air-water interface of atmospheric droplets

Item

Title (Dublin Core)

Evidence of the water-cage effect on the photolysis of NO3- and FeOH2+, and its implications for the photochemistry at the air-water interface of atmospheric droplets

Description (Dublin Core)

Experiments are conducted to determine the photolysis quantum yields of nitrate, FeOH<sup>2+</sup>, and H<sub>2</sub>O<sub>2</sub> in the bulk and at the surface layer of water. Results show that the quantum yields of nitrate and FeOH<sup>2+</sup> are enhanced at the surface compared to the bulk due to a reduced water-cage surrounding the photo-fragments (<sup>&bull;</sup>OH+<sup>&bull;</sup>NO<sub>2</sub> and Fe<sup>2+</sup>+<sup>&bull;</sup>OH, respectively). However, no evidence is found for an enhanced quantum yield for H<sub>2</sub>O<sub>2</sub> at the surface. The photolysis rate constant distribution within nitrate, FeOH<sup>2+</sup>, and H<sub>2</sub>O<sub>2</sub> aerosols is calculated by combining the quantum yield data with Mie theory calculations of light intensity. Values for the photolysis rate constant of nitrate and FeOH<sup>2+</sup> are significantly higher at the surface than in the bulk due to enhanced quantum yields at the surface. The results concerning the rates of photolysis of these photoactive species are applied to the assessment of the reaction between benzene and <sup>&bull;</sup>OH in the presence of <sup>&bull;</sup>OH scavengers in an atmospherically relevant scenario. For a droplet of 1&mu;m radius, a large fraction of the total <sup>&bull;</sup>OH-benzene reaction (15% for H<sub>2</sub>O<sub>2</sub>, 20% for nitrate, and 35% for FeOH<sup>2+</sup>) occurs in the surface layer, which accounts for just 0.15% of the droplet volume. By neglecting the surface effects on photochemistry, the rate of the important reactions could be underestimated by a considerable amount.

Creator (Dublin Core)

Nissenson, P.
Dabdub, D.
Das, R.
Maurino, V.
Minero, C.
Vione, D.

Date (Dublin Core)

2018-08-10

Type (Dublin Core)

Text

Format (Dublin Core)

application/pdf

Identifier (Dublin Core)

10.5194/acpd-9-13123-2009
https://acp.copernicus.org/preprints/acp-2009-325/

Source (Dublin Core)

eISSN: 1680-7324

Language (Dublin Core)

eng
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