Hydrochemical mercury distribution and air-sea exchange over the submarine hydrothermal vents off-shore Panarea Island (Aeolian arc, Tyrrhenian Sea)
Author(s)
Language
English
Obiettivo Specifico
6A. Geochimica per l'ambiente
Status
Published
JCR Journal
JCR Journal
Peer review journal
Yes
Journal
Issue/vol(year)
/194 (2017)
Pages (printed)
63-78
Date Issued
May 27, 2017
Subjects
mercury distribution and air-sea exchange over submarine hydrothermal vents
Abstract
There is a growing concern about the mercury (Hg) vented from submarine hydrothermal fluids to the marine
surrounding and exchange of dissolved gaseous mercury (DGM) between the sea surface and the atmosphere. A geochemical survey of thermal waters collected from submarine vents at Panarea Island (Aeolian Islands,
southern Italy) was carried out in 2015 (15–17th June and 17–18th November), in order to investigate the
concentration of Hg species in hydrothermal fluids and the vertical distribution in the overlying water column
close to the submarine exhalative area. Specific sampling methods were employed by Scuba divers at five
submarine vents located along the main regional tectonic lines. The analysis of the hydrothermal fluids indicates a site-to-site variation, with filtered total mercury (FTHg) concentrations ranging from 1072 to 4711 pM, as a consequence of the gas bubbles partial dissolution. These results are three orders of magnitude higher than the FTHg concentrations found in the overlying seawater column (ranging from 5.3 to 6.3 pM in the mid waters), where the efficient currents and vertical mixing result in more dilution, and potentially rapid transfer of the dissolved gaseous Hg to the atmosphere. Dissolved gaseous mercury (DGM) and gaseous elemental mercury (GEM) were simultaneously measured and combined in a gas-exchange model to calculate the sea-air Hg0 evasional flux. Based on the data of DGM (range: 0.05–0.22 pM) and atmospheric GEM (range:
1.7 ± 0.35–6.4 ± 2.6 ng m−3), we argue that the surface seawater off Panarea is mostly supersaturated in
dissolved elemental gaseous mercury compared to the atmosphere, with a sea-air Hg0 net flux ranging from 0.7 to 9.1 ng m−2 h−1 (average: ~4.5 ± 3.5 ng m−2 h−1). Since the empirical gas-exchange model does not include the contribution of Hg0 released as gas bubbles rising from the vents toward sea-surface, the calculated Hg0 evasional flux for this location is most likely larger.
surrounding and exchange of dissolved gaseous mercury (DGM) between the sea surface and the atmosphere. A geochemical survey of thermal waters collected from submarine vents at Panarea Island (Aeolian Islands,
southern Italy) was carried out in 2015 (15–17th June and 17–18th November), in order to investigate the
concentration of Hg species in hydrothermal fluids and the vertical distribution in the overlying water column
close to the submarine exhalative area. Specific sampling methods were employed by Scuba divers at five
submarine vents located along the main regional tectonic lines. The analysis of the hydrothermal fluids indicates a site-to-site variation, with filtered total mercury (FTHg) concentrations ranging from 1072 to 4711 pM, as a consequence of the gas bubbles partial dissolution. These results are three orders of magnitude higher than the FTHg concentrations found in the overlying seawater column (ranging from 5.3 to 6.3 pM in the mid waters), where the efficient currents and vertical mixing result in more dilution, and potentially rapid transfer of the dissolved gaseous Hg to the atmosphere. Dissolved gaseous mercury (DGM) and gaseous elemental mercury (GEM) were simultaneously measured and combined in a gas-exchange model to calculate the sea-air Hg0 evasional flux. Based on the data of DGM (range: 0.05–0.22 pM) and atmospheric GEM (range:
1.7 ± 0.35–6.4 ± 2.6 ng m−3), we argue that the surface seawater off Panarea is mostly supersaturated in
dissolved elemental gaseous mercury compared to the atmosphere, with a sea-air Hg0 net flux ranging from 0.7 to 9.1 ng m−2 h−1 (average: ~4.5 ± 3.5 ng m−2 h−1). Since the empirical gas-exchange model does not include the contribution of Hg0 released as gas bubbles rising from the vents toward sea-surface, the calculated Hg0 evasional flux for this location is most likely larger.
References
Aiuppa, A., Bagnato, E., Witt, M.L.I., Mather, T.A., Parello, F., Pyle, D.M., Martin, R.S.,
2007. Real-time simultaneous detection of volcanic Hg and SO2 at La Fossa Crater,
Vulcano (Aeolian Islands, Sicily). Geophys. Res. Lett. 34, L21307.
Amyot, M., Gill, G.A., Morel, F.M.M., 1997. Production and loss of dissolved gaseous
mercury in coastal seawater. Environ. Sci. Technol. 31, 3606–3611.
Andaloro, F., Romeo, T., Renzi, M., Guerranti, C., Perra, G., Consoli, P., Perzia, P.,
Focardi, S.E., 2012. Alteration of potential harmful elements levels in sediments and
biota from the central Mediterranean Sea (Aeolian Archipelago) following an episode
of intense volcanic activity. Environ. Monit. Assess. 184, 4035.
Andersson, M.E., Gardfeldt, K., Wangberg, I., Sprovieri, F., Pirrone, N., Lindqvist, O.,
2007. Seasonal and daily variation of mercury on and off shore sites from the
Mediterranean Sea. Mar. Chem. 107 (1), 104–116.
Andersson, M.E., Gardfeldt, K., Wangberg, I., Stromberg, D., 2008. Determination of
Henry's law constant for elemental mercury. Chemosphere 73, 587–592.
Andersson, M.E., Sommar, J., Gardfeldt, K., 2011. Air–sea exchange of volatile mercury in
the North Sea. Mar. Chem. 125, 1–7.
Asthakhov, A.S., Koruykin, G.I., Ivanov, M.V., 2005. Nature mercury emission from Earth
Crust in Artic and subartic marine environ ments. Geophys. Res. Abstr., vol. 7, 649
(European Geosciences Union).
Astakhov, A.S., Wallmann, K., Ivanov, M.V., Kolesov, G.M., Sattarova, V.V., 2007.
Distribution and accumulation rate of Hg in the Upper Quaternary sediments of the
Deryugin Basin, Sea of Okhotsk. Geochem. Int. 45 (1), 47–61.
Astakhov, A.S., Ivanov, M.V., Li, B.Y., 2011. Hydrochemical and atmochemical mercury
dispersion zones over hydrothermal vents of the submarine Piip Volcano in the
Bering Sea. Oceanology 51, 826.
Baeyens, W., Leermakers, M., 1998. Elemental mercury concentrations and formation
rates in the Scheldt estuary and the North Sea. Mar. Chem. 60, 257–266.
Bagnato, E., Aiuppa, A., Parello, F., Allard, P., Liuzzo, M., Giudice, G., Shinohara, H.,
2011. New clues on mercury contribution from Earth volcanism. Bull. Volcanol. 73,497–510.
Bagnato, E., Sprovieri, M., Barra, M., Bitetto, M., Bonsignore, M., Calabrese, S., Di
Stefano, V., Oliveri, E., Parello, F., Mazzola, S., 2013. The sea-air exchange of mercury
(Hg) in the marine boundary layer of the Augusta basin (southern Italy): concentrations
and evasion flux. Chemosphere 93 (9), 2024–2032.
Bagnato, E., Tamburello, G., Avard, G., Martinez, M., Enrico, M., Fu, X., Sprovieri, M.,
Sonke, J., 2014. Mercury fluxes from volcanic and geothermal sources: an update. In:
The Role of Volatiles in the Genesis, Evolution and Eruption of Arc Magmas. Edited
by Geological Society of London; available online http://sp.lyellcollection.org/; doi
http://dx.doi.org/10.1144/SP410.2.
Barnes, H.L., 1979. Geochemistry of Hydrothermal Ore Deposits, 2° edition. John Wiley
Editor, New York.
Caliro, S., Caracausi, A., Chiodini, G., Ditta, M., Italiano, F., Longo, M., Minopoli, C.,
Nuccio, P.M., Paonita, A., Rizzo, A., 2004. Evidence of a recent input of magmatic
gases into the quiescent volcanic edifice of Panarea, Aeolian Islands, l Italy. Geophys.
Res. Lett. 31, L07619. http://dx.doi.org/10.1029/2003GL019359.
Caracausi, A., Ditta, M., Italiano, F., Longo, M., Nuccio, P.M., Paonita, A., Rizzo, A., 2005.
Changes in fluid geochemistry and physico-chemical conditions of geothermal systems
caused by magmatic input: the recent abrupt outgassing off the island of
Panarea (Aeolian Islands, Italy). Geochim. Cosmochim. Acta 69 (12), 3045–3059.
Caramanna, G., Voltattorni, N., Caramanna, L., Cinti, D., Galli, G., Pizzino, L.,
Quattrocchi, F., 2005. Scientific diving techniques applied to the geomorphological
and geochemical study of some submarine volcanic gas vents (Aeolian Islands-
Southern Tyrrhenian Sea-Italy). In: Diving for Science: Proceedings of the 24th
Symposium of American Academy of Underwater Sciences.
Caramanna, G., Espa, S., Bouché, V., 2010. Study of the environmental effects of submarine
CO2-rich emissions by means of scientific diving techniques (Panarea Island-
Italy). Int. J. Soc. Underwater Technol. 29 (2), 79–85.
Carr, R.A., Jones, M.M., Warner, T.B., Cheek, C.H., Russ, E.R., 1975. Variation in time of
mercury anomalies at the Mid-Atlantic Ridge. Nature 258, 588–589.
Chiodini, G., Cioni, R., Guidi, M., Raco, B., Marini, L., 1998. Soil CO2 flux measurements
in volcanic and geothermal areas. Appl. Geochem. 13 (5), 543–552.
Ci, Z.J., Zhang, X.S., Wang, Z.W., Niu, Z.C., Diao, X.Y., Wang, S.W., 2011. Distribution
and air–sea exchange of mercury (Hg) in the Yellow Sea. Atmos. Chem. Phys. 11,
2881–2892.
Coquery, M., Cossa, D., 1995. Mercury speciation in surface waters of the North Sea.
Neth. J. Sea Res. 34, 245–257.
Cossa, D., Coquery, M., 2005. The Mediterranean mercury anomaly, a geochemical or a
biological issue. In: Hdb. Env. Chem. 5. Springer-Verlag, Heidelberg.
Cossa, D., Martin, J.M., Takayanagi, K., Sanjuan, J., 1997. The distribution and cycling of
mercury species in the western Mediterranean. Deep-Sea Res. II 44, 721–740.
Costa, M., Liss, P.S., 1999. Photoreduction of mercury in sea water and its possible implications
for Hg0 air–sea fluxes. Mar. Chem. 68, 87–95.
Costa, M., Liss, P.S., 2000. Photoreduction and evolution of mercury from seawater. Sci.
Total Environ. 261, 125–135.
Covelli, S., Faganeli, J., Horvat, M., Brambati, A., 1999. Porewater distribution and
benthic flux measurements of mercury and methylmercury in the gulf of Trieste
(Northern Adriatic Sea). Estuar. Coast. Shelf Sci. 48, 415–428.
Craig, H., Weiss, R., 1971. Dissolved gas saturation anomalies and excess helium in the
ocean. Earth Planet. Sci. Lett. 10, 289–296.
Cronan, D.S., 1972. The mid-Atlantic Ridge near 45°N: Al, As, Hg, and Mn in ferruginous
sediments from the median valley. Can. J. Earth Sci. 9, 319–323.
Dalziel, J.A., 1995. Reactive mercury in eastern North Atlantic and Southern Atlantic.
Mar. Chem. 49, 307–314.
D'Asaro, E., McNeil, C., 2007. Air-sea gas exchange at extreme wind speeds measured by
autonomous oceanographic floats. J. Mar. Syst. 66, 92–109.
Dekov, V.M., 2007. Native Hgliq in the metalliferous sediments of the East Pacific Rise
(21°S). Mar. Geol. 238, 107–113.
Dekov, V.M., Savelli, C., 2004. Hydrothermal activity in the SE Tyrrhenian Sea: an
overview of 30 years of research. Mar. Geol. 204, 161–185.
Erickson, D.J., 1993. A stability dependent theory for air-sea gas exchange. J. Geophys.
Res. 98, 8471–8488.
Fantozzi, L., Ferrara, R., Frontini, F.P., Dini, F., 2007. Factors influencing the daily behaviour
of dissolved gaseous mercury concentration in the Mediterranean Sea. Mar.
Chem. 107, 4–12.
Fantozzi, L., Ferrara, R., Frontini, F.P., Dini, F., 2009. Dissolved gaseous mercury production
in the dark: evidence for the fundamental role of bacteria in different types of
Mediterranean water bodies. Sci. Total Environ. 407, 917–924.
Fantozzi, L., Manca, G., Ammoscato, I., Pirrone, N., Sprovieri, F., 2013. The cycling and
sea–air exchange of mercury in the waters of the Eastern Mediterranean during the
2010 MED-OCEANOR cruise campaign. Sci. Total Environ. 448, 151–162.
Farmer, D.M., McNeil, C.L., Johnson, B.D., 1993. Evidence for the importance of bubbles
in increasing air-sea gas flux. Nature 361, 620–623.
Ferrara, R., Mazzolai, B., Lanzillotta, E., Nucaro, E., Pirrone, N., 2000. Temporal trends in
gaseous mercury evasion from the Mediterranean seawaters. Sci. Total Environ. 259,
183–190.
Ferrara, R., Lanzillotta, E., Ceccarini, C., 2001. Dissolved gaseous mercury concentration
and mercury evasional flux from seawater in front of a chlor-alkali plant. Environ.
Technol. 22 (8), 971–978.
Ferrara, R., Ceccarini, C., Lanzillotta, E., Gardfeldt, K., Sommar, J., Horvat, M., Logar, M.,
Fajon, V., Kotnik, 2003. Profiles of dissolved gaseous mercury concentration in the
Mediterranean seawater. Atmos. Environ. 37, 85–92.
Fitzgerald, W.F., Lamborg, C.H., Hammerschmidt, C.R., 2007. Marine biogeochemical
cycling of mercury. Chem. Rev. 107, 641–662.
Fu, X.W., Feng, X.B., Zhang, G., Xu, W.H., Li, X.D., Yao, H., Liang, P., Li, J., Sommar, J.,
Yin, R., Liu, N., 2010. Mercury in the marine boundary layer and seawater of theSouth China Sea: concentrations, sea/air flux, and implication for land outflow. J.
Geophys. Res. 115, D06303.
Fuchs, G., Roether, E.W., Schlosser, P., 1987. Excess 3He in the ocean layer. J. Geophys.
Res. 92, 6559–6568.
Gabbianelli, G., Gillot, P.Y., Lanzafame, G., Ligi, M., Postpisch, D., Rossi, P.L., 1986.
Controllo strutturale nell'evoluzione vulcanica di Panarea (Isole Eolie). In: CNR IIV
Open File Rep. 4/86, pp. 27.
Gårdfeldt, K., Feng, X., Sommar, J., Lindqvist, O., 2001. Total gaseous mercury exchange
between air and water at river and sea surfaces in Swedish coastal regions. Atmos.
Environ. 35, 3027–3038.
Gardfeldt, K., Sommar, J., Ferrara, R., Ceccarini, C., Lanzillotta, E., Munthe, J., Wangberg,
I., Lindqvist, O., Pirrone, N., Sprovieri, F., Pesenti, E., Stromberg, D., 2003. Evasion of
mercury from coastal and open waters of the Atlantic Ocean and the Mediterranean
Sea. Atmos. Environ. 37 (1), S73–S84 Supplement No.
Gasparini, P., Iannaccone, G., Scandone, P., Scarpa, R., 1982. The seismotectonics of the
Calabrian Arc. Tectonophys. 84, 267–286.
Gugliandolo, C., Italiano, F., Maugeri, T.L., 2006. The submarine hydrothermal system of
Panarea (Southern Italy): biogeochemical processes at the thermal fluids-sea bottom
interface. Ann. Geophys. 49, 783–792.
Gustin, M.S., Lindberg, S., Marsik, F., Casimir, A., Ebinghaus, R., Edwards, G., Hubble-
Fitzgerald, C., Kemp, R., Kock, H., Leonard, T., London, J., Majewski, M., Montecinos,
C., Owens, J., Pilote, M., Poissant, L., Rasmussen, P., Schaedlich, F., Schneeberger, D.,
Schroeder, W., Sommar, J., Turner, R., Vette, A., Wallschlaeger, D., Xiao, Z., Zhang,
H., 1999. Nevada STORMS project: measurement of mercury emissions from naturally
enriched surfaces. J. Geophys. Res. 104, 21831–21844.
Hamme, R.C., Emerson, S.R., 2002. Mechanisms controlling the global oceanic distribution
of the inert gases argon, nitrogen and neon. Geophys. Res. Lett. 29 (23), 2120.
http://dx.doi.org/10.1029/2002GL015273.
Hamme, R.C., Emerson, S.R., 2006. Constraining bubble dynamics and mixing with dissolved
gases: Implications for productivity measurements by oxygen mass balance. J.
Mar. Res. 64, 73–95.
Horvat, M., Kotnik, J., Logar, M., Fajon, V., Zvonaric, T., Pirrone, N., 2003. Speciation of
mercury in surface and deep-sea waters in the Mediterranean Sea. Atmos. Environ.
37, 93–108.
Inguaggiato, S., Italiano, F., 1998. Helium and carbon isotopes in submarine gases from
the Aeolian arc (Southern Italy). In: Proceeding of the 9th International Symposium
on Water-Rock Interaction-WRI9, 30 March-3 April 1998, pp. 727–730 Taupo, New
Zealand (Arehart & Hulston, Rotterdam).
Italiano, F., Nuccio, P.M., 1991. Geochemical investigations on submarine volcanic exhalations
to the East of Panarea, Aeolian Islands, Italy. J. Volcanol. Geotherm. Res.
46, 125–141.
Khodakovskiy, I.L., Shikina, N.D., 1983. The role of carbonate complexes in mercury
transport in hydrothermal solutions (experimental studies and thermodynamic analysis).
Geochem. Int. 18 (3), 32–43.
Kim, J.P., Fitzgerald, W.F., 1986. Sea-air partitioning of mercury in the equatorial Pacific
Ocean. Science 28, 1131–1133.
Kim, K.H., Lindberg, S., 1995. Design and initial tests of dynamic enclosure chamber for
measurements of vapour-phase mercury fluxes over soils. Water Air Soil Pollut. 80,
1059–1068.
Kim, K.H., Mishra, V.K., Hong, S., 2006. The rapid and continuous monitoring of gaseous
elemental mercury (GEM) behavior in ambient air. Atmos. Environ. 40, 3281–3293.
Kotnik, J., Horvat, M., Tessier, E., Ogrinc, N., Monperrus, M., Amouroux, D., Fajon, V.,
Gibičar, D., Žižek, S., Sprovieri, F., Pirrone, N., 2007. Mercury speciation in surface
and deep waters of the Mediterranean Sea. Mar. Chem. 107 (1), 13–30.
Kotnik, J., Sprovieri, F., Ogrinc, N., Horvat, M., Pirrone, N., 2013. Mercury in the
Mediterranean. Part 1: spatial and temporal trends. Environ. Sci. Pollut. Res. http://
dx.doi.org/10.1007/s11356-013-2378-2.
Krauskopf, K.B., 1951. Physical chemistry of quicksilver tansportation in vein fluids.
Econ. Geol. 46, 498–523.
Krupp, R., 1988. Physicochemical aspects of mercury metallogenesis. Chem. Geol. 69,
345–356.
Kuss, J., Holzmann, J., Ludwig, R., 2009. An elemental mercury diffusion coefficient for
natural waters determined by molecular dynamics simulation. Environ. Sci. Technol.
43, 3183–3186.
Lamborg, C.H., Von Damm, K.L., Fitzgerald, W.F., Hammerschmidt, C.R., Zierenberg,
R.A., 2006. Mercury and monomethylmercury in fluids from Sea Cliff submarine
hydrothermal field, Gorda Ridge. Geophys. Res. Lett. 33, L17606.
Lamborg, C.H., Yigiterhan, O., Fitzgerald, W.F., Balcom, P.H., Hammerschmidt, C.R.,
Murray, J.W., 2008. Vertical distribution of mercury species at two sites in the
western Black Sea. Mar. Chem. 111, 77–89.
Langmuir, D., 1977. Aqueous Environmental Geochemistry. Prentice Hall, New Jersey,
pp. 600.
Lanzillotta, E., Ferrara, R., 2001. Daily trend of dissolved gaseous mercury concentration
in coastal seawater of the Mediterranean basin. Chemosphere 45, 935–940.
Lanzillotta, E., Ceccarini, C., Ferrara, R., 2002. Photo-induced formation of dissolved
gaseous mercury in coastal and offshore seawater of the Mediterranean basin. Sci.
Total Environ. 300, 179–187.
Laurier, F.J.G., Mason, R.P., Gill, G.A., Whalin, L., 2004. Mercury distributions in the
North Pacific Ocean-20 years of observations. Mar. Chem. 90 (1–4), 3–19.
Liss, P.S., 1983. Gas transfer: experiments and geochemical implications. In: Liss, P.S.,
Slinn, W.G.N. (Eds.), Air -sea exchange of gaseous and particles. NATO ASI Series, D.
Reidel Publishing Company, Dordrecht, Boston, Lancaster, pp. 241–259.
Liss, P.W., Slater, P.G., 1974. Flux of gases across the air-sea interface. Nature 247,
181–184.
Marumoto, K., Imai, S., 2015. Determination of dissolved gaseous mercury in seawater of
Minamata Bay and estimation for mercury exchange across air–sea interface. Mar.
2007. Real-time simultaneous detection of volcanic Hg and SO2 at La Fossa Crater,
Vulcano (Aeolian Islands, Sicily). Geophys. Res. Lett. 34, L21307.
Amyot, M., Gill, G.A., Morel, F.M.M., 1997. Production and loss of dissolved gaseous
mercury in coastal seawater. Environ. Sci. Technol. 31, 3606–3611.
Andaloro, F., Romeo, T., Renzi, M., Guerranti, C., Perra, G., Consoli, P., Perzia, P.,
Focardi, S.E., 2012. Alteration of potential harmful elements levels in sediments and
biota from the central Mediterranean Sea (Aeolian Archipelago) following an episode
of intense volcanic activity. Environ. Monit. Assess. 184, 4035.
Andersson, M.E., Gardfeldt, K., Wangberg, I., Sprovieri, F., Pirrone, N., Lindqvist, O.,
2007. Seasonal and daily variation of mercury on and off shore sites from the
Mediterranean Sea. Mar. Chem. 107 (1), 104–116.
Andersson, M.E., Gardfeldt, K., Wangberg, I., Stromberg, D., 2008. Determination of
Henry's law constant for elemental mercury. Chemosphere 73, 587–592.
Andersson, M.E., Sommar, J., Gardfeldt, K., 2011. Air–sea exchange of volatile mercury in
the North Sea. Mar. Chem. 125, 1–7.
Asthakhov, A.S., Koruykin, G.I., Ivanov, M.V., 2005. Nature mercury emission from Earth
Crust in Artic and subartic marine environ ments. Geophys. Res. Abstr., vol. 7, 649
(European Geosciences Union).
Astakhov, A.S., Wallmann, K., Ivanov, M.V., Kolesov, G.M., Sattarova, V.V., 2007.
Distribution and accumulation rate of Hg in the Upper Quaternary sediments of the
Deryugin Basin, Sea of Okhotsk. Geochem. Int. 45 (1), 47–61.
Astakhov, A.S., Ivanov, M.V., Li, B.Y., 2011. Hydrochemical and atmochemical mercury
dispersion zones over hydrothermal vents of the submarine Piip Volcano in the
Bering Sea. Oceanology 51, 826.
Baeyens, W., Leermakers, M., 1998. Elemental mercury concentrations and formation
rates in the Scheldt estuary and the North Sea. Mar. Chem. 60, 257–266.
Bagnato, E., Aiuppa, A., Parello, F., Allard, P., Liuzzo, M., Giudice, G., Shinohara, H.,
2011. New clues on mercury contribution from Earth volcanism. Bull. Volcanol. 73,497–510.
Bagnato, E., Sprovieri, M., Barra, M., Bitetto, M., Bonsignore, M., Calabrese, S., Di
Stefano, V., Oliveri, E., Parello, F., Mazzola, S., 2013. The sea-air exchange of mercury
(Hg) in the marine boundary layer of the Augusta basin (southern Italy): concentrations
and evasion flux. Chemosphere 93 (9), 2024–2032.
Bagnato, E., Tamburello, G., Avard, G., Martinez, M., Enrico, M., Fu, X., Sprovieri, M.,
Sonke, J., 2014. Mercury fluxes from volcanic and geothermal sources: an update. In:
The Role of Volatiles in the Genesis, Evolution and Eruption of Arc Magmas. Edited
by Geological Society of London; available online http://sp.lyellcollection.org/; doi
http://dx.doi.org/10.1144/SP410.2.
Barnes, H.L., 1979. Geochemistry of Hydrothermal Ore Deposits, 2° edition. John Wiley
Editor, New York.
Caliro, S., Caracausi, A., Chiodini, G., Ditta, M., Italiano, F., Longo, M., Minopoli, C.,
Nuccio, P.M., Paonita, A., Rizzo, A., 2004. Evidence of a recent input of magmatic
gases into the quiescent volcanic edifice of Panarea, Aeolian Islands, l Italy. Geophys.
Res. Lett. 31, L07619. http://dx.doi.org/10.1029/2003GL019359.
Caracausi, A., Ditta, M., Italiano, F., Longo, M., Nuccio, P.M., Paonita, A., Rizzo, A., 2005.
Changes in fluid geochemistry and physico-chemical conditions of geothermal systems
caused by magmatic input: the recent abrupt outgassing off the island of
Panarea (Aeolian Islands, Italy). Geochim. Cosmochim. Acta 69 (12), 3045–3059.
Caramanna, G., Voltattorni, N., Caramanna, L., Cinti, D., Galli, G., Pizzino, L.,
Quattrocchi, F., 2005. Scientific diving techniques applied to the geomorphological
and geochemical study of some submarine volcanic gas vents (Aeolian Islands-
Southern Tyrrhenian Sea-Italy). In: Diving for Science: Proceedings of the 24th
Symposium of American Academy of Underwater Sciences.
Caramanna, G., Espa, S., Bouché, V., 2010. Study of the environmental effects of submarine
CO2-rich emissions by means of scientific diving techniques (Panarea Island-
Italy). Int. J. Soc. Underwater Technol. 29 (2), 79–85.
Carr, R.A., Jones, M.M., Warner, T.B., Cheek, C.H., Russ, E.R., 1975. Variation in time of
mercury anomalies at the Mid-Atlantic Ridge. Nature 258, 588–589.
Chiodini, G., Cioni, R., Guidi, M., Raco, B., Marini, L., 1998. Soil CO2 flux measurements
in volcanic and geothermal areas. Appl. Geochem. 13 (5), 543–552.
Ci, Z.J., Zhang, X.S., Wang, Z.W., Niu, Z.C., Diao, X.Y., Wang, S.W., 2011. Distribution
and air–sea exchange of mercury (Hg) in the Yellow Sea. Atmos. Chem. Phys. 11,
2881–2892.
Coquery, M., Cossa, D., 1995. Mercury speciation in surface waters of the North Sea.
Neth. J. Sea Res. 34, 245–257.
Cossa, D., Coquery, M., 2005. The Mediterranean mercury anomaly, a geochemical or a
biological issue. In: Hdb. Env. Chem. 5. Springer-Verlag, Heidelberg.
Cossa, D., Martin, J.M., Takayanagi, K., Sanjuan, J., 1997. The distribution and cycling of
mercury species in the western Mediterranean. Deep-Sea Res. II 44, 721–740.
Costa, M., Liss, P.S., 1999. Photoreduction of mercury in sea water and its possible implications
for Hg0 air–sea fluxes. Mar. Chem. 68, 87–95.
Costa, M., Liss, P.S., 2000. Photoreduction and evolution of mercury from seawater. Sci.
Total Environ. 261, 125–135.
Covelli, S., Faganeli, J., Horvat, M., Brambati, A., 1999. Porewater distribution and
benthic flux measurements of mercury and methylmercury in the gulf of Trieste
(Northern Adriatic Sea). Estuar. Coast. Shelf Sci. 48, 415–428.
Craig, H., Weiss, R., 1971. Dissolved gas saturation anomalies and excess helium in the
ocean. Earth Planet. Sci. Lett. 10, 289–296.
Cronan, D.S., 1972. The mid-Atlantic Ridge near 45°N: Al, As, Hg, and Mn in ferruginous
sediments from the median valley. Can. J. Earth Sci. 9, 319–323.
Dalziel, J.A., 1995. Reactive mercury in eastern North Atlantic and Southern Atlantic.
Mar. Chem. 49, 307–314.
D'Asaro, E., McNeil, C., 2007. Air-sea gas exchange at extreme wind speeds measured by
autonomous oceanographic floats. J. Mar. Syst. 66, 92–109.
Dekov, V.M., 2007. Native Hgliq in the metalliferous sediments of the East Pacific Rise
(21°S). Mar. Geol. 238, 107–113.
Dekov, V.M., Savelli, C., 2004. Hydrothermal activity in the SE Tyrrhenian Sea: an
overview of 30 years of research. Mar. Geol. 204, 161–185.
Erickson, D.J., 1993. A stability dependent theory for air-sea gas exchange. J. Geophys.
Res. 98, 8471–8488.
Fantozzi, L., Ferrara, R., Frontini, F.P., Dini, F., 2007. Factors influencing the daily behaviour
of dissolved gaseous mercury concentration in the Mediterranean Sea. Mar.
Chem. 107, 4–12.
Fantozzi, L., Ferrara, R., Frontini, F.P., Dini, F., 2009. Dissolved gaseous mercury production
in the dark: evidence for the fundamental role of bacteria in different types of
Mediterranean water bodies. Sci. Total Environ. 407, 917–924.
Fantozzi, L., Manca, G., Ammoscato, I., Pirrone, N., Sprovieri, F., 2013. The cycling and
sea–air exchange of mercury in the waters of the Eastern Mediterranean during the
2010 MED-OCEANOR cruise campaign. Sci. Total Environ. 448, 151–162.
Farmer, D.M., McNeil, C.L., Johnson, B.D., 1993. Evidence for the importance of bubbles
in increasing air-sea gas flux. Nature 361, 620–623.
Ferrara, R., Mazzolai, B., Lanzillotta, E., Nucaro, E., Pirrone, N., 2000. Temporal trends in
gaseous mercury evasion from the Mediterranean seawaters. Sci. Total Environ. 259,
183–190.
Ferrara, R., Lanzillotta, E., Ceccarini, C., 2001. Dissolved gaseous mercury concentration
and mercury evasional flux from seawater in front of a chlor-alkali plant. Environ.
Technol. 22 (8), 971–978.
Ferrara, R., Ceccarini, C., Lanzillotta, E., Gardfeldt, K., Sommar, J., Horvat, M., Logar, M.,
Fajon, V., Kotnik, 2003. Profiles of dissolved gaseous mercury concentration in the
Mediterranean seawater. Atmos. Environ. 37, 85–92.
Fitzgerald, W.F., Lamborg, C.H., Hammerschmidt, C.R., 2007. Marine biogeochemical
cycling of mercury. Chem. Rev. 107, 641–662.
Fu, X.W., Feng, X.B., Zhang, G., Xu, W.H., Li, X.D., Yao, H., Liang, P., Li, J., Sommar, J.,
Yin, R., Liu, N., 2010. Mercury in the marine boundary layer and seawater of theSouth China Sea: concentrations, sea/air flux, and implication for land outflow. J.
Geophys. Res. 115, D06303.
Fuchs, G., Roether, E.W., Schlosser, P., 1987. Excess 3He in the ocean layer. J. Geophys.
Res. 92, 6559–6568.
Gabbianelli, G., Gillot, P.Y., Lanzafame, G., Ligi, M., Postpisch, D., Rossi, P.L., 1986.
Controllo strutturale nell'evoluzione vulcanica di Panarea (Isole Eolie). In: CNR IIV
Open File Rep. 4/86, pp. 27.
Gårdfeldt, K., Feng, X., Sommar, J., Lindqvist, O., 2001. Total gaseous mercury exchange
between air and water at river and sea surfaces in Swedish coastal regions. Atmos.
Environ. 35, 3027–3038.
Gardfeldt, K., Sommar, J., Ferrara, R., Ceccarini, C., Lanzillotta, E., Munthe, J., Wangberg,
I., Lindqvist, O., Pirrone, N., Sprovieri, F., Pesenti, E., Stromberg, D., 2003. Evasion of
mercury from coastal and open waters of the Atlantic Ocean and the Mediterranean
Sea. Atmos. Environ. 37 (1), S73–S84 Supplement No.
Gasparini, P., Iannaccone, G., Scandone, P., Scarpa, R., 1982. The seismotectonics of the
Calabrian Arc. Tectonophys. 84, 267–286.
Gugliandolo, C., Italiano, F., Maugeri, T.L., 2006. The submarine hydrothermal system of
Panarea (Southern Italy): biogeochemical processes at the thermal fluids-sea bottom
interface. Ann. Geophys. 49, 783–792.
Gustin, M.S., Lindberg, S., Marsik, F., Casimir, A., Ebinghaus, R., Edwards, G., Hubble-
Fitzgerald, C., Kemp, R., Kock, H., Leonard, T., London, J., Majewski, M., Montecinos,
C., Owens, J., Pilote, M., Poissant, L., Rasmussen, P., Schaedlich, F., Schneeberger, D.,
Schroeder, W., Sommar, J., Turner, R., Vette, A., Wallschlaeger, D., Xiao, Z., Zhang,
H., 1999. Nevada STORMS project: measurement of mercury emissions from naturally
enriched surfaces. J. Geophys. Res. 104, 21831–21844.
Hamme, R.C., Emerson, S.R., 2002. Mechanisms controlling the global oceanic distribution
of the inert gases argon, nitrogen and neon. Geophys. Res. Lett. 29 (23), 2120.
http://dx.doi.org/10.1029/2002GL015273.
Hamme, R.C., Emerson, S.R., 2006. Constraining bubble dynamics and mixing with dissolved
gases: Implications for productivity measurements by oxygen mass balance. J.
Mar. Res. 64, 73–95.
Horvat, M., Kotnik, J., Logar, M., Fajon, V., Zvonaric, T., Pirrone, N., 2003. Speciation of
mercury in surface and deep-sea waters in the Mediterranean Sea. Atmos. Environ.
37, 93–108.
Inguaggiato, S., Italiano, F., 1998. Helium and carbon isotopes in submarine gases from
the Aeolian arc (Southern Italy). In: Proceeding of the 9th International Symposium
on Water-Rock Interaction-WRI9, 30 March-3 April 1998, pp. 727–730 Taupo, New
Zealand (Arehart & Hulston, Rotterdam).
Italiano, F., Nuccio, P.M., 1991. Geochemical investigations on submarine volcanic exhalations
to the East of Panarea, Aeolian Islands, Italy. J. Volcanol. Geotherm. Res.
46, 125–141.
Khodakovskiy, I.L., Shikina, N.D., 1983. The role of carbonate complexes in mercury
transport in hydrothermal solutions (experimental studies and thermodynamic analysis).
Geochem. Int. 18 (3), 32–43.
Kim, J.P., Fitzgerald, W.F., 1986. Sea-air partitioning of mercury in the equatorial Pacific
Ocean. Science 28, 1131–1133.
Kim, K.H., Lindberg, S., 1995. Design and initial tests of dynamic enclosure chamber for
measurements of vapour-phase mercury fluxes over soils. Water Air Soil Pollut. 80,
1059–1068.
Kim, K.H., Mishra, V.K., Hong, S., 2006. The rapid and continuous monitoring of gaseous
elemental mercury (GEM) behavior in ambient air. Atmos. Environ. 40, 3281–3293.
Kotnik, J., Horvat, M., Tessier, E., Ogrinc, N., Monperrus, M., Amouroux, D., Fajon, V.,
Gibičar, D., Žižek, S., Sprovieri, F., Pirrone, N., 2007. Mercury speciation in surface
and deep waters of the Mediterranean Sea. Mar. Chem. 107 (1), 13–30.
Kotnik, J., Sprovieri, F., Ogrinc, N., Horvat, M., Pirrone, N., 2013. Mercury in the
Mediterranean. Part 1: spatial and temporal trends. Environ. Sci. Pollut. Res. http://
dx.doi.org/10.1007/s11356-013-2378-2.
Krauskopf, K.B., 1951. Physical chemistry of quicksilver tansportation in vein fluids.
Econ. Geol. 46, 498–523.
Krupp, R., 1988. Physicochemical aspects of mercury metallogenesis. Chem. Geol. 69,
345–356.
Kuss, J., Holzmann, J., Ludwig, R., 2009. An elemental mercury diffusion coefficient for
natural waters determined by molecular dynamics simulation. Environ. Sci. Technol.
43, 3183–3186.
Lamborg, C.H., Von Damm, K.L., Fitzgerald, W.F., Hammerschmidt, C.R., Zierenberg,
R.A., 2006. Mercury and monomethylmercury in fluids from Sea Cliff submarine
hydrothermal field, Gorda Ridge. Geophys. Res. Lett. 33, L17606.
Lamborg, C.H., Yigiterhan, O., Fitzgerald, W.F., Balcom, P.H., Hammerschmidt, C.R.,
Murray, J.W., 2008. Vertical distribution of mercury species at two sites in the
western Black Sea. Mar. Chem. 111, 77–89.
Langmuir, D., 1977. Aqueous Environmental Geochemistry. Prentice Hall, New Jersey,
pp. 600.
Lanzillotta, E., Ferrara, R., 2001. Daily trend of dissolved gaseous mercury concentration
in coastal seawater of the Mediterranean basin. Chemosphere 45, 935–940.
Lanzillotta, E., Ceccarini, C., Ferrara, R., 2002. Photo-induced formation of dissolved
gaseous mercury in coastal and offshore seawater of the Mediterranean basin. Sci.
Total Environ. 300, 179–187.
Laurier, F.J.G., Mason, R.P., Gill, G.A., Whalin, L., 2004. Mercury distributions in the
North Pacific Ocean-20 years of observations. Mar. Chem. 90 (1–4), 3–19.
Liss, P.S., 1983. Gas transfer: experiments and geochemical implications. In: Liss, P.S.,
Slinn, W.G.N. (Eds.), Air -sea exchange of gaseous and particles. NATO ASI Series, D.
Reidel Publishing Company, Dordrecht, Boston, Lancaster, pp. 241–259.
Liss, P.W., Slater, P.G., 1974. Flux of gases across the air-sea interface. Nature 247,
181–184.
Marumoto, K., Imai, S., 2015. Determination of dissolved gaseous mercury in seawater of
Minamata Bay and estimation for mercury exchange across air–sea interface. Mar.
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