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Kinetics of stabilised Criegee intermediates derived from alkene ozonolysis: reactions with SO2, H2O and decomposition under boundary layer conditions.
- Source :
- Physical Chemistry Chemical Physics (PCCP); 2015, Vol. 17 Issue 6, p4076-4088, 13p
- Publication Year :
- 2015
-
Abstract
- The removal of SO<subscript>2</subscript> in the presence of alkene–ozone systems has been studied for ethene, cis-but-2-ene, trans-but-2-ene and 2,3-dimethyl-but-2-ene, as a function of humidity, under atmospheric boundary layer conditions. The SO<subscript>2</subscript> removal displays a clear dependence on relative humidity for all four alkene–ozone systems confirming a significant reaction for stabilised Criegee intermediates (SCI) with H<subscript>2</subscript>O. The observed SO<subscript>2</subscript> removal kinetics are consistent with relative rate constants, k(SCI + H<subscript>2</subscript>O)/k(SCI + SO<subscript>2</subscript>), of 3.3 (±1.1) × 10<superscript>−5</superscript> for CH<subscript>2</subscript>OO, 26 (±10) × 10<superscript>−5</superscript> for CH<subscript>3</subscript>CHOO derived from cis-but-2-ene, 33 (±10) × 10<superscript>−5</superscript> for CH<subscript>3</subscript>CHOO derived from trans-but-2-ene, and 8.7 (±2.5) × 10<superscript>−5</superscript> for (CH<subscript>3</subscript>)<subscript>2</subscript>COO derived from 2,3-dimethyl-but-2-ene. The relative rate constants for k(SCI decomposition)/k(SCI + SO<subscript>2</subscript>) are −2.3 (±3.5) × 10<superscript>11</superscript> cm<superscript>−3</superscript> for CH<subscript>2</subscript>OO, 13 (±43) × 10<superscript>11</superscript> cm<superscript>−3</superscript> for CH<subscript>3</subscript>CHOO derived from cis-but-2-ene, −14 (±31) × 10<superscript>11</superscript> cm<superscript>−3</superscript> for CH<subscript>3</subscript>CHOO derived from trans-but-2-ene and 63 (±14) × 10<superscript>11</superscript> cm<superscript>−3</superscript> for (CH<subscript>3</subscript>)<subscript>2</subscript>COO. Uncertainties are ±2σ and represent combined systematic and precision components. These values are derived following the approximation that a single SCI is present for each system; a more comprehensive interpretation, explicitly considering the differing reactivity for syn- and anti-SCI conformers, is also presented. This yields values of 3.5 (±3.1) × 10<superscript>−4</superscript> for k(SCI + H<subscript>2</subscript>O)/k(SCI + SO<subscript>2</subscript>) of anti-CH<subscript>3</subscript>CHOO and 1.2 (±1.1) × 10<superscript>13</superscript> for k(SCI decomposition)/k(SCI + SO<subscript>2</subscript>) of syn-CH<subscript>3</subscript>CHOO. The reaction of the water dimer with CH<subscript>2</subscript>OO is also considered, with a derived value for k(CH<subscript>2</subscript>OO + (H<subscript>2</subscript>O)<subscript>2</subscript>)/k(CH<subscript>2</subscript>OO + SO<subscript>2</subscript>) of 1.4 (±1.8) × 10<superscript>−2</superscript>. The observed SO<subscript>2</subscript> removal rate constants, which technically represent upper limits, are consistent with decomposition being a significant, structure dependent, sink in the atmosphere for syn-SCI. [ABSTRACT FROM AUTHOR]
Details
- Language :
- English
- ISSN :
- 14639076
- Volume :
- 17
- Issue :
- 6
- Database :
- Complementary Index
- Journal :
- Physical Chemistry Chemical Physics (PCCP)
- Publication Type :
- Academic Journal
- Accession number :
- 100753086
- Full Text :
- https://doi.org/10.1039/c4cp04186k