Distribution and biogeochemical behaviour of iron in the East Antarctic sea ice
暂无分享,去创建一个
J. Tison | L. Chou | D. Lannuzel | V. Schoemann | J. Jong
[1] H. Hellmer,et al. The Importance of Sea Ice: An Overview , 2010 .
[2] Hajo Eicken,et al. Chapter 2. From the Microscopic, to the Macroscopic, to the Regional Scale: Growth, Microstructure and Properties of Sea Ice , 2008 .
[3] J. Tison,et al. Development of a sampling and flow injection analysis technique for iron determination in the sea ice environment , 2006 .
[4] K. Linge,et al. Trends in the solubility of iron, aluminium, manganese and phosphorus in aerosol collected over the Atlantic Ocean , 2006 .
[5] M. Grotti,et al. Trace metals distributions in coastal sea ice of Terra Nova Bay, Ross Sea, Antarctica , 2005, Antarctic Science.
[6] N. Mahowald,et al. Global Iron Connections Between Desert Dust, Ocean Biogeochemistry, and Climate , 2005, Science.
[7] D. Thomas. Iron Limitation in the Southern Ocean , 2003, Science.
[8] A. Watson,et al. Vertical eddy diffusion and nutrient supply to the surface mixed layer of the Antarctic Circumpolar Current , 2003 .
[9] D. Turner,et al. The Biogeochemistry of Iron in Seawater , 2001 .
[10] P. Sedwick,et al. Iron in East Antarctic snow: Implications for atmospheric iron deposition and algal production in Antarctic waters , 2001 .
[11] T. Mock,et al. A mesocosm study of physical-biological interactions in artificial sea ice: effects of brine channel surface evolution and brine movement on algal biomass , 2001, Polar Biology.
[12] P. Sedwick,et al. Holocene sediment records from the continental shelf of Mac. Robertson Land, East Antarctica , 2001 .
[13] K. Johnson. Iron supply and demand in the upper ocean: Is extraterrestrial dust a significant source of bioavailable iron? , 2001 .
[14] P. Sedwick,et al. Iron and Manganese in the Ross Sea, Antarctica: Seasonal Iron Limitation in Antarctic Shelf Waters , 2000 .
[15] Francisco P. Chavez,et al. Continental-shelf sediment as a primary source of iron for coastal phytoplankton , 1999, Nature.
[16] G. Kattner,et al. Dissolved iron at subnanomolar levels in the Southern Ocean as determined by ship-board analysis , 1998 .
[17] Golden,et al. The percolation phase transition in sea Ice , 1998, Science.
[18] S. Grossmann,et al. Experimental formation of sea ice: importance of water circulation and wave action for incorporation of phytoplankton and bacteria , 1998, Polar Biology.
[19] Syukuro Manabe,et al. Simulated response of the ocean carbon cycle to anthropogenic climate warming , 1998, Nature.
[20] P. Sedwick,et al. Regulation of algal blooms in Antarctic Shelf Waters by the release of iron from melting sea ice , 1997 .
[21] I. Allison. Physical processes determining the Antarctic sea ice environment , 1997 .
[22] T. Platt,et al. An estimate of global primary production in the ocean from satellite radiometer data , 1995 .
[23] V. Smetácek,et al. Importance of iron for plankton blooms and carbon dioxide drawdown in the Southern Ocean , 1995, Nature.
[24] Hajo Eicken,et al. Salinity profiles of Antarctic sea ice : field data and model results , 1992 .
[25] R. Duce,et al. Atmospheric transport of iron and its deposition in the ocean , 1991 .
[26] S. Westerlund,et al. Iron in the water column of the Weddell sea , 1991 .
[27] H. Eicken,et al. Spatial variability of sea‐ice properties in the northwestern Weddell Sea , 1991 .
[28] John H. Martin. glacial-interglacial Co2 change : the iron hypothesis , 1990 .
[29] D. Garrison,et al. Algae concentrated by frazil ice: evidence from laboratory experiments and field measurements , 1989, Antarctic Science.
[30] S. Ackley,et al. A physical mechanism for establishing algal populations in frazil ice , 1983, Nature.
[31] Stephen F. Ackley,et al. The Growth, Structure, and Properties of Sea Ice , 1982 .
[32] C. Yentsch,et al. A method for the determination of phytoplankton chlorophyll and phaeophytin by fluorescence , 1963 .
[33] Chester C. Langway,et al. Ice fabrics and the universal stage , 1958 .
[34] S. Sander,et al. FeCycle: Attempting an iron biogeochemical budget from a mesoscale SF6 tracer experiment in unperturbed low iron waters , 2005 .
[35] G. Dieckmann,et al. From the microscopic to the macroscopic to the regional scale : Growth , microstructure and properties of sea ice 1 , 2003 .
[36] D. Thomas,et al. Sea ice : an introduction to its physics, chemistry, biology, and geology , 2003 .
[37] A. Watson,et al. Carbon Dioxide Fluxes in the Global Ocean , 2003 .
[38] M. Fasham,et al. Ocean biogeochemistry: the role of the ocean carbon cycle in global change , 2003 .
[39] P. Worsfold,et al. The fate of added iron during a mesoscale fertilisation experiment in the Southern Ocean , 2001 .
[40] P. Falkowski,et al. Seasonal distributions of aeolian iron fluxes to the global ocean , 2001 .
[41] H. D. Baar,et al. Distributions, sources and sinks of iron in seawater , 2001 .
[42] A. Watson. Iron limitation in the oceans , 2001 .
[43] H. J. W. D. Baara,et al. Dissolved iron at subnanomolar levels in the Southern Ocean as determined by shipboard analysis , 1998 .
[44] P. Sedwick,et al. Iron in ice cores from Law Dome, East Antarctica: implications for past deposition of aerosol iron , 1998, Annals of Glaciology.
[45] Martin O. Jeffries,et al. Antarctic sea ice : physical processes, interactions, and variability , 1998 .
[46] F. Dehairs,et al. The distribution of Fe in the antarctic circumpolar current , 1997 .
[47] I. H. Öğüş,et al. NATO ASI Series , 1997 .
[48] S. Fitzwater,et al. Iron deficiency limits phytoplankton growth in the north-east Pacific subarctic , 1988, Nature.
[49] N. K. Sinha,et al. Growth Rate and Salinity Profile of First-Year Sea Ice in the High Arctic , 1981, Journal of Glaciology.