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dc.contributor.authorNunes, Fabíola Maria Nobre-
dc.contributor.authorPereira, Pedro Afonso de Paula-
dc.contributor.authorAndrade, Jailson Bittencourt de-
dc.contributor.authorVeloso, Márcia Cristina da Cunha-
dc.creatorNunes, Fabíola Maria Nobre-
dc.creatorPereira, Pedro Afonso de Paula-
dc.creatorAndrade, Jailson Bittencourt de-
dc.creatorVeloso, Márcia Cristina da Cunha-
dc.date.accessioned2013-09-11T12:49:31Z-
dc.date.issued2005-
dc.identifier.issn1352-2310-
dc.identifier.urihttp://www.repositorio.ufba.br/ri/handle/ri/12900-
dc.descriptionTexto completo: acesso restrito. p.7715–7730pt_BR
dc.description.abstractBiogenic emissions of volatile organic compounds (VOCs) play a fundamental role in atmospheric chemistry. Vegetation is the most abundant natural source of VOCs, while terpenoids, as limonene, α and β pinene and mircene, top the plants emission list. Much interest has been demonstrated in oxidation and photooxidation reactions of VOCs, particularly of monoterpenoids, owing to their diversity and to uncertainties regarding their mechanism of reaction. Quantification of primary carbonylic compounds, as well as of biradical reaction components, is highly relevant to the understanding of the major reactions. In this context, taking into account both structural factors and the fact that these compounds are found in the essential oils of plants typically found in Brazil and that they may be present in the atmosphere from emission by the plants, the monoterpenoids (S)-(+)-carvone, (R)-(−)-carvone, (−)-carveol, geraniol and citral (a mixture of the isomers geranial and neral) were selected for this study. The ozonolysis reactions of the monoterpenoids were carried out under dark conditions for all experiments, due to their photochemical reactivity. The analysis of the results lets us propose a mechanism by which these reactions occur. The observed results of the ozonolysis of S and R carvone suggest that the stereochemistry of asymmetric carbon does not affect either in the yields of both formaldehyde and of OH radicals produced in the reaction, or in the reactivity of these compounds, for which the rate constants were in the scale of 10−6 s−1. We found that, in the (−)-carveol's cis and trans mixture, even though the hydroxyl in the axial position—in the case of trans-(C) and cis-(D′) isomers—favors the attack by the ozone molecule on the external double bond, thus increasing the mixture's reactivity View the MathML source, it affects the average production of formaldehyde. The presence of geraniol and citral led to the production of formaldehyde, propanone, glyoxal, methyl–glyoxal and cyclohexanone (OH radicals) as reaction products. The influence of an electron attractor group bonded to the carbon of the double bond, on the reactivity of the double bond, could not be observed in the case of citral, due to strong interference occurring in the instrument in all experiments with this monoterpenoid. For this reason, only the kinetics of geraniol was monitored View the MathML source.pt_BR
dc.language.isoenpt_BR
dc.sourcehttp://dx.doi.org.ez10.periodicos.capes.gov.br/10.1016/j.atmosenv.2005.04.009pt_BR
dc.subjectMonoterpenoidspt_BR
dc.subjectOzonept_BR
dc.subjectGas-phase ozonolysispt_BR
dc.titleGas-phase ozonolysis of the monoterpenoids (S)-(+)-carvone, (R)-(−)-carvone, (−)-carveol, geraniol and citralpt_BR
dc.title.alternativeAtmospheric Environmentpt_BR
dc.typeArtigo de Periódicopt_BR
dc.identifier.numberv.39 n. 40pt_BR
dc.embargo.liftdate10000-01-01-
Aparece nas coleções:Artigo Publicado em Periódico (Química)

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