Publications des scientifiques de l'IRD

Rosati G., Heimburger L. E., Canu D. M., Lagane Christelle, Laffont L., Rijkenberg M. J. A., Gerringa L. J. A., Solidoro C., Gencarelli C. N., Hedgecock I. M., De Baar H. J. W., Sonke J. E. (2018). Mercury in the Black Sea : new insights from measurements and numerical modeling. Global Biogeochemical Cycles, 32 (4), p. 529-550. ISSN 0886-6236.

Titre du document
Mercury in the Black Sea : new insights from measurements and numerical modeling
Année de publication
2018
Type de document
Article référencé dans le Web of Science WOS:000431991800002
Auteurs
Rosati G., Heimburger L. E., Canu D. M., Lagane Christelle, Laffont L., Rijkenberg M. J. A., Gerringa L. J. A., Solidoro C., Gencarelli C. N., Hedgecock I. M., De Baar H. J. W., Sonke J. E.
Source
Global Biogeochemical Cycles, 2018, 32 (4), p. 529-550 ISSN 0886-6236
Redox conditions and organic matter control marine methylmercury (MeHg) production. The Black Sea is the world's largest and deepest anoxic basin and is thus ideal to study Hg species along the extended redox gradient. Here we present new dissolved Hg and MeHg data from the 2013 GEOTRACES MEDBlack cruise (GN04_leg2) that we integrated into a numerical 1-D model, to track the fate and dynamics of Hg and MeHg. Contrary to a previous study, our new data show highest MeHg concentrations in the permanently anoxic waters. Observed MeHg/Hg percentage (range 9-57%) in the anoxic waters is comparable to other subsurface maxima in oxic open-ocean waters. With the modeling we tested for various Hg methylation and demethylation scenarios along the redox gradient. The results show that Hg methylation must occur in the anoxic waters. The model was then used to simulate the time evolution (1850-2050) of Hg species in the Black Sea. Our findings quantify (1) inputs and outputs of Hg-T (similar to 31 and similar to 28 kmol yr(-1)) and MeHgT (similar to 5 and similar to 4 kmol yr(-1)) to the basin, (2) the extent of net demethylation occurring in oxic (similar to 1 kmol yr(-1)) and suboxic water (similar to 6 kmol yr(-1)), (3) and the net Hg methylation in the anoxic waters of the Black Sea (similar to 11 kmol yr(-1)). The model was also used to estimate the amount of anthropogenic Hg (85-93%) in the Black Sea.
Plan de classement
Limnologie physique / Océanographie physique [032] ; Pollution [038]
Description Géographique
MER NOIRE
Localisation
Fonds IRD [F B010072861]
Identifiant IRD
fdi:010072861
Contact