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Ultra-trace analysis of Hg in alkaline lavas and regolith from James Ross Island

Published online by Cambridge University Press:  10 December 2014

Pavel Coufalík*
Affiliation:
Faculty of Science, Masaryk University, Kotlářská 2, 61137 Brno, Czech Republic Institute of Analytical Chemistry, Academy of Sciences of the Czech Republic, v.v.i., Veveří 97, 60200 Brno, Czech Republic
Ondřej Zvěřina
Affiliation:
Faculty of Science, Masaryk University, Kotlářská 2, 61137 Brno, Czech Republic Faculty of Medicine, Masaryk University, Kamenice 5, 62500 Brno, Czech Republic
Lukáš Krmíček
Affiliation:
Faculty of Civil Engineering, Brno University of Technology, Veveří 95, 60200 Brno, Czech Republic Institute of Geology, Academy of Sciences of the Czech Republic, v.v.i., Rozvojová 269, 16500 Prague 6, Czech Republic
Richard Pokorný
Affiliation:
Faculty of Environmental Studies, University J. E. Purkyně, Králova výšina 3132/7, 40096 Ústí nad Labem, Czech Republic
Josef Komárek
Affiliation:
Faculty of Science, Masaryk University, Kotlářská 2, 61137 Brno, Czech Republic

Abstract

Polar regions represent a unique environment for the study of mercury cycling in the global ecosystem. Our research was focused on the assessment of the origin and mobility of mercury in the geochemical cycle in Maritime Antarctic (James Ross Island) by means of atomic absorption spectrometry. Mercury content in a set of extrusive (subaerial, subaqueous) and intrusive (dyke) alkaline basalts ranged between 1.6 µg kg-1 (for samples without xenoliths) and 8 µg kg-1 (for samples containing crustal xenoliths). The mercury content in alkaline basalts indicates a very low concentration of mercury in peridotitic mantle sources. Samples of regolith from James Ross Island were subjected to a comprehensive analytical procedure proposed for ultra-trace mercury concentrations involving fractionation and thermal analysis. Total mercury contents in regolith (2.7–11.3 µg kg-1) did not deviate from the natural background in this part of Antarctica. Additionally, the obtained results are about two orders of magnitude smaller than values formerly assumed for primary mercury contents in basaltic lavas. Our results from Antarctica were compared with mercury contents in basaltic rocks from Greenland and the findings were confirmed. It seems that the input of mercury of geological origin into the polar ecosystem is apparently lower than expected.

Type
Earth Sciences
Copyright
© Antarctic Science Ltd 2014 

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References

Bargagli, R. 2005. Antarctic ecosystems. Environmental contamination, climatic change, and human impact. Berlin: Springer, 395 pp.Google Scholar
Bargagli, R. 2008. Environmental contamination in Antarctic ecosystems. Science of the Total Environment, 400, 212226.CrossRefGoogle ScholarPubMed
Bargagli, R., Monaci, F. & Bucci, C. 2007. Environmental biogeochemistry of mercury in Antarctic ecosystems. Soil Biology & Biochemistry, 39, 352360.CrossRefGoogle Scholar
Bargagli, R., Agnorelli, C., Borghini, F. & Monaci, F. 2005. Enhanced deposition and bioaccumulation of mercury in Antarctic terrestrial ecosystems facing a coastal polynya. Environmental Science & Technology, 39, 81508155.CrossRefGoogle ScholarPubMed
Bargagli, R., Battisti, E., Focardi, S. & Formichi, P. 1993. Preliminary data on environmental distribution of mercury in northern Victoria Land, Antarctica. Antarctic Science, 5, 38.Google Scholar
Bargagli, R., Sanchez-Hernandez, J.C., Martella, L. & Monaci, F. 1998. Mercury, cadmium and lead accumulation in Antarctic mosses growing along nutrient and moisture gradients. Polar Biology, 19, 316322.Google Scholar
Brooks, S., Arimoto, R., Lindberg, S. & Southworth, G. 2008a. Antarctic polar plateau snow surface conversion of deposited oxidized mercury to gaseous elemental mercury with fractional long-term burial. Atmospheric Environment, 42, 28772884.Google Scholar
Brooks, S., Lindberg, S., Southworth, G. & Arimoto, R. 2008b. Springtime atmospheric mercury speciation in the McMurdo, Antarctica coastal region. Atmospheric Environment, 42, 28852893.CrossRefGoogle Scholar
Campbell, I.B. & Claridge, G.G.C. 1987. Antarctica: soils, weathering processes and environment. Amsterdam: Elsevier, 368 pp.Google Scholar
CGS. 2009. James Ross Island – northern part. Topographical map, 1:25000. Prague: Czech Geological Survey.Google Scholar
Coufalík, P., Zvěřina, O. & Komárek, J. 2014. Determination of mercury species using thermal desorption analysis in AAS. Chemical Papers, 68, 427434.Google Scholar
De Ferro, A.M., Mota, A.M. & Canário, J. 2014. Pathways and speciation of mercury in the environmental compartments of Deception Island, Antarctica. Chemosphere, 95, 227233.Google Scholar
De Moreno, J.E.A., Gerpe, M.S., Moreno, V.J. & Vodopivez, C. 1997. Heavy metals in Antarctic organisms. Polar Biology, 17, 131140.Google Scholar
Dissanayake, C.B. & Vincent, E.A. 1975. Mercury in rocks and minerals of the Skaergaard intrusion, East Greenland. Mineralogical Magazine, 40, 3342.Google Scholar
Fleischer, M. 1970. Summary of the literature on the inorganic geochemistry of mercury. In Mercury in the environment. Geological Survey Professional Paper 713. Washington, DC: United States Geological Survey, 67 pp.Google Scholar
Košler, J., Magna, T., Mlčoch, B., Mixa, P., Nývlt, D. & Holub, F.V. 2009. Combined Sr, Nd, Pb and Li isotope geochemistry of alkaline lavas from northern James Ross Island (Antarctic Peninsula) and implications for back-arc magma formation. Chemical Geology, 258, 207218.Google Scholar
Larsen, L.M. & Pedersen, A.K. 2009. Petrology of the paleocene picrites and flood basalts on Disko and Nuussuaq, West Greenland. Journal of Petrology, 50, 16671711.CrossRefGoogle Scholar
Lu, Z.B., Cai, M.H., Wang, J., Yang, H.Z. & He, J.F. 2012. Baseline values for metals in soils on Fildes Peninsula, King George Island, Antarctica: the extent of anthropogenic pollution. Environmental Monitoring and Assessment, 184, 70137021.Google Scholar
Martin, R.S., Witt, M.L.I., Sawyer, G.M., Thomas, H.E., Watt, S.F.L., Bagnato, E., Calabrese, S., Aiuppa, A., Delmelle, P., Pyle, D.M. & Mather, T.A. 2012. Bioindication of volcanic mercury (Hg) deposition around Mt. Etna (Sicily). Chemical Geology, 310, 1222.Google Scholar
Martínez-Cortizas, A., Pontevedra-Pombal, X., García-Rodeja, E., Nóvoa-Muñoz, J.C. & Shotyk, W. 1999. Mercury in a Spanish peat bog: archive of climate change and atmospheric metal deposition. Science, 284, 939942.CrossRefGoogle Scholar
Nývlt, D., Košler, J., Mlčoch, B., Mixa, P., Lisá, L., Bubík, M. & Hendriks, B.W.H. 2011. The Mendel Formation: evidence for late Miocene climatic cyclicity at the northern tip of the Antarctic Peninsula. Palaeogeography, Palaeoclimatology, Palaeoecology, 299, 363384.Google Scholar
Nývlt, D., Braucher, R., Engel, Z., Mlčoch, B. & ASTER team . 2014. Timing of the northern Prince Gustav Ice Stream retreat and the deglaciation of northern James Ross Island, Antarctic Peninsula during the last glacial-interglacial transition. Quaternary Research, 82, 441449.Google Scholar
Nie, Y., Liu, X.D., Sun, L.G. & Emslie, S.D. 2012. Effect of penguin and seal excrement on mercury distribution in sediments from the Ross Sea region, East Antarctica. Science of the Total Environment, 433, 132140.Google Scholar
Palme, H. & O’Neill, H.S.C. 2003. Cosmochemical estimates of mantle composition. In Holland H.D. & Turekian K.K., eds. Treatise on geochemistry, vol. 2. New York, NY: Elsevier, 138.Google Scholar
Pfaffhuber, K.A., Berg, T., Hirdman, D. & Stohl, A. 2012. Atmospheric mercury observations from Antarctica: seasonal variation and source and sink region calculations. Atmospheric Chemistry and Physics, 12, 32413251.Google Scholar
Rudnick, R.L. & Gao, S. 2003. Composition of the continental crust. In Holland H.D. & Turekian K.K., eds. Treatise on geochemistry, vol. 3. New York, NY: Elsevier, 164.Google Scholar
Smellie, J.L., Johnson, J.S., McIntosh, W.C., Esser, R., Gudmundsson, M.T., Hambrey, M.J. & de Vries, B.V. 2008. Six million years of glacial history recorded in volcanic lithofacies of the James Ross Island Volcanic Group, Antarctic Peninsula. Palaeogeography, Palaeoclimatology, Palaeoecology, 260, 122148.Google Scholar
Vodrážka, R. & Crame, J.A. 2011. First fossil sponge from Antarctica and its paleobiogeographical significance. Journal of Paleontology, 85, 4857.Google Scholar
Zintwana, M.P., Cawthorn, R.G., Ashwal, L.D., Roelofse, F. & Cronwright, H. 2012. Mercury in the Bushveld Complex, South Africa, and the Skaergaard Intrusion, Greenland. Chemical Geology, 320, 147155.Google Scholar