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Photodissociation Mechanisms of Major Mercury(II) Species in the Atmospheric Chemical Cycle of Mercury.
Francés-Monerris, Antonio; Carmona-García, Javier; Acuña, A Ulises; Dávalos, Juan Z; Cuevas, Carlos A; Kinnison, Douglas E; Francisco, Joseph S; Saiz-Lopez, Alfonso; Roca-Sanjuán, Daniel.
Afiliação
  • Francés-Monerris A; Université de Lorraine, CNRS, LPCT, 54000, Nancy, France.
  • Carmona-García J; Departamento de Química Física, Universitat de València, 46100, Burjassot, Spain.
  • Acuña AU; Institut de Ciència Molecular, Universitat de València, 46071, València, Spain.
  • Dávalos JZ; Department of Atmospheric Chemistry and Climate, Institute of Physical Chemistry Rocasolano, CSIC, 28006, Madrid, Spain.
  • Cuevas CA; Department of Atmospheric Chemistry and Climate, Institute of Physical Chemistry Rocasolano, CSIC, 28006, Madrid, Spain.
  • Kinnison DE; Department of Atmospheric Chemistry and Climate, Institute of Physical Chemistry Rocasolano, CSIC, 28006, Madrid, Spain.
  • Francisco JS; Atmospheric Chemistry Observations and Modelling, NCAR, Boulder, CO, 80301, USA.
  • Saiz-Lopez A; Department of Earth and Environmental Sciences and Department of Chemistry, University of Pennsylvania, Philadelphia, PA, 19104, USA.
  • Roca-Sanjuán D; Department of Atmospheric Chemistry and Climate, Institute of Physical Chemistry Rocasolano, CSIC, 28006, Madrid, Spain.
Angew Chem Int Ed Engl ; 59(19): 7605-7610, 2020 May 04.
Article em En | MEDLINE | ID: mdl-31833158
ABSTRACT
Mercury is a contaminant of global concern that is transported throughout the atmosphere as elemental mercury Hg0 and its oxidized forms HgI and HgII . The efficient gas-phase photolysis of HgII and HgI has recently been reported. However, whether the photolysis of HgII leads to other stable HgII species, to HgI , or to Hg0 and its competition with thermal reactivity remain unknown. Herein, we show that all oxidized forms of mercury rapidly revert directly and indirectly to Hg0 by photolysis. Results are based on non-adiabatic dynamics simulations, in which the photoproduct ratios were determined with maximum errors of 3%. We construct for the first time a complete quantitative mechanism of the photochemical and thermal conversion between atmospheric HgII , HgI , and Hg0 compounds. These results reveal new fundamental chemistry that has broad implications for the global atmospheric Hg cycle. Thus, photoreduction clearly competes with thermal oxidation, with Hg0 being the main photoproduct of HgII photolysis in the atmosphere, which significantly increases the lifetime of this metal in the environment.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article