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  • 1
    ISSN: 1476-4687
    Source: Nature Archives 1869 - 2009
    Topics: Biology , Chemistry and Pharmacology , Medicine , Natural Sciences in General , Physics
    Notes: [Auszug] Heterotrophic nanoprotozoans are known to be important components of the marine planktonic ecosystem as the primary consumers of bacterial biomass10 and recyclers of major nutrients11'12. These grazers consume particles and colloids in the 0.2-1-um size class13, which in sea water contains a ...
    Type of Medium: Electronic Resource
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  • 2
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    PANGAEA
    In:  Supplement to: Croot, Peter L; Bowie, Andrew R; Frew, Russell; Maldonado, Maria T; Hall, Julie A; Safi, Karl A; La Roche, Julie; Boyd, Philip W; Law, Cliff S (2001): Retention of dissolved iron and Fe II in an iron induced Southern Ocean phytoplankton bloom. Geophysical Research Letters, 28(18), 3425-3428, https://doi.org/10.1029/2001GL013023
    Publication Date: 2023-01-13
    Description: During the 13 day Southern Ocean Iron RE-lease Experiment (SOIREE), dissolved iron concentrations decreased rapidly following each of three iron-enrichments, but remained high (〉1 nM, up to 80% as FeII) after the fourth and final enrichment on day 8. The former trend was mainly due to dilution (spreading of iron-fertilized waters) and particle scavenging. The latter may only be explained by a joint production-maintenance mechanism; photoreduction is the only candidate process able to produce sufficiently high FeII, but as such levels persisted overnight (8 hr dark period) -ten times the half-life for this species- a maintenance mechanism (complexation of FeII) is required, and is supported by evidence of increased ligand concentrations on day 12. The source of these ligands and their affinity for FeII is not known. This retention of iron probably permitted the longevity of this bloom raising fundamental questions about iron cycling in HNLC (High Nitrate Low Chlorophyll) Polar waters.
    Keywords: Comment; Date/Time of event; DEPTH, water; Error; Event label; GOFLO; Go-Flo bottles; Iron, dissolved; Iron, dissolved, conditional complex stability; Iron-binding ligand, dissolved; Latitude of event; Longitude of event; SOIREE; Southern Ocean - Australasian-Pacific Sector; T1136-1; T1139-1; T1140-6; T1141-6; T1144-6; T1151-5; T1152-5; T1158-5; T1159-6; T1160-3; T1162-4; T1171-5; Tangaroa; Voltammetry
    Type: Dataset
    Format: text/tab-separated-values, 64 data points
    Location Call Number Limitation Availability
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  • 3
    Publication Date: 2023-01-13
    Keywords: ANT-XXIV/3; Cathodic stripping square wave voltammetry; CTD/Rosette; CTD/Rosette, ultra clean; CTD-RO; CTD-UC; Date/Time of event; DEPTH, water; Drake Passage; Elevation of event; Event label; Iodate; Iodide; Iodine; Latitude of event; Longitude of event; Polarstern; PS71; PS71/229-1; PS71/232-1; PS71/237-1; PS71/243-1; PS71/244-6; PS71/250-6; PS71/251-3; PS71/252-2; Scotia Sea, southwest Atlantic; South Atlantic Ocean; SPEC; Spectrophotometer; Standard deviation
    Type: Dataset
    Format: text/tab-separated-values, 530 data points
    Location Call Number Limitation Availability
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  • 4
    Publication Date: 2023-01-13
    Keywords: D318; D324; D345; D353; Date/Time of event; DEPTH, water; Event label; GOFLO; Go-Flo bottles; Iron, dissolved; Iron, dissolved, conditional complex stability; Iron, dissolved, inorganic; Iron, standard deviation; Iron-binding ligand, dissolved; Latitude of event; Longitude of event; Method comment; S. A. Agulhas; Southern Ocean; Standard deviation; SWEDARP_97/98; SWEDARP_D318; SWEDARP_D324; SWEDARP_D345; SWEDARP_D353
    Type: Dataset
    Format: text/tab-separated-values, 49 data points
    Location Call Number Limitation Availability
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  • 5
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    PANGAEA
    In:  Supplement to: Nishioka, Jun; Takeda, Shigenobu; de Baar, Hein J W; Croot, Peter L; Boyé, Marie; Laan, Patrick; Timmermans, Klaas R (2005): Changes in the concentration of iron in different size fractions during an iron enrichment experiment in the open Southern Ocean. Marine Chemistry, 95(1-2), 51-63, https://doi.org/10.1016/j.marchem.2004.06.040
    Publication Date: 2023-05-12
    Description: An in situ iron enrichment experiment was carried out in the Southern Ocean Polar Frontal Zone and fertilized a patch of water within an eddy of the Antarctic Circumpolar Current (EisenEx, Nov. 2000). During the experiment, a physical speciation technique was used for iron analysis in order to understand the changes in iron distribution and size-fractionations, including soluble Fe (〈200 kDa), colloidal Fe (200 kDa-0.2 µm) and labile particle Fe (〉0.2 µm), throughout the development of the phytoplankton bloom. Prior to the first infusion of iron, dissolved (〈0.2 µm) iron concentrations in the ambient surface seawater were extremely low (0.06±0.015 nM) with colloidal iron being a minor fraction. For the iron addition, an acidified FeSO4 solution was released three times over a 23-day period to the eddy. High levels of dissolved iron concentrations (2.0±1.1 nM) were measured in the surface water until 4 days after the first iron infusion. After every iron infusion, when high iron concentrations were observed before storm events, there was a significant correlation between colloidal and dissolved iron concentrations ([Colloidal Fe]=0.7627[Dissolved Fe]+0.0519, R2=0.9346). These results indicate that a roughly constant proportion of colloidal vs. dissolved iron was observed after iron infusion (~76%). Storm events caused a significant decrease in iron concentrations (〈0.61 nM in dissolved iron) and changed the proportions of the three iron size-fractions (soluble, colloidal and labile particle). The changes in each iron size-fraction indicate that colloidal iron was eliminated from surface mixed layer more easily than particulate and soluble fractions. Therefore, particle and soluble iron efficiently remain in the mixed layer, probably due to the presence of suspended particles and naturally dissolved organic ligands. Our data suggest that iron removal through colloidal aggregation during phytoplankton bloom should be considered in the oceanic iron cycle.
    Keywords: A5; Ammonium; ANT-XVIII/2; B3; B4; Bottle number; C3; Colorometric autoanalysis; D3; Date/Time of event; DEPTH, water; E3; EisenEx; Elevation of event; European Iron Enrichment Experiment in the Southern Ocean; Event label; F3; GOFLO; Go-Flo bottles; Iron; Iron, colloidal; Iron, dissolved; Iron, particulate; Iron, soluble; Latitude of event; Longitude of event; Nitrate; Nitrate and Nitrite; Nitrite; Phosphate; Polarstern; PS58/006-4; PS58/007-6; PS58/009-7; PS58/011-7; PS58/012-2; PS58/014-7; PS58/016-2; PS58/020-2; PS58/023-2; PS58/028-2; PS58/031-2; PS58/038-6; PS58/041-3; PS58/045-3; PS58/046-2; PS58/048-2; PS58/049-4; PS58/054-2; PS58/055-2; PS58/061-2; PS58/079-1; PS58/081-2; PS58/083-2; PS58/085-2; PS58/086-2; PS58/088-8; PS58/091-2; PS58/092-2; PS58/100-2; PS58/103-2; PS58/106-4; PS58/107-8; PS58/108-2; PS58 EISENEX; see further details; Silicate; South Atlantic; Spectrophotometry
    Type: Dataset
    Format: text/tab-separated-values, 1891 data points
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  • 6
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    In:  Supplement to: Boyé, Marie; Nishioka, Jun; Croot, Peter L; Laan, Patrick; Timmermans, Klaas R; de Baar, Hein J W (2005): Major deviations of iron complexation during 22 days of a mesoscale iron enrichment in the open Southern Ocean. Marine Chemistry, 96(3-4), 257-271, https://doi.org/10.1016/j.marchem.2005.02.002
    Publication Date: 2023-05-12
    Description: The speciation of strongly chelated iron during the 22-day course of an iron enrichment experiment in the Atlantic sector of the Southern Ocean deviates strongly from ambient natural waters. Three iron additions (ferrous sulfate solution) were conducted, resulting in elevated dissolved iron concentrations (Nishioka, J., Takeda, S., de Baar, H.J.W., Croot, P.L., Boye, M., Laan, P., Timmermans, K.R., 2005, Changes in the concentration of iron in different size fractions during an iron enrichment experiment in the open Southern Ocean. Marine Chemistry, doi:10.1016/j.marchem.2004.06.040) and significant Fe(II) levels (Croot, P.L., Laan, P., Nishioka, J., Strass, V., Cisewski, B., Boye, M., Timmermans, K.R., Bellerby, R.G., Goldson, L., Nightingale, P., de Baar, H.J.W., 2005, Spatial and Temporal distribution of Fe(II) and H2O2 during EisenEx, an open ocean mescoscale iron enrichment. Marine Chemistry, doi:10.1016/j.marchem.2004.06.041). Repeated vertical profiles for dissolved (filtrate 〈 0.2 µm) Fe(III)-binding ligands indicated a production of chelators in the upper water column induced by iron fertilizations. Abiotic processes (chemical reactions) and an inductive biologically mediated mechanism were the likely sources of the dissolved ligands which existed either as inorganic amorphous phases and/or as strong organic chelators. Discrete analysis on ultra-filtered samples (〈 200 kDa) suggested that the produced ligands would be principally colloidal in size (〉 200 kDa-〈 0.2 µm), as opposed to the soluble fraction (〈 200 kDa) which dominated prior to the iron infusions. Yet these colloidal ligands would exist in a more transient nature than soluble ligands which may have a longer residence time. The production of dissolved Fe-chelators was generally smaller than the overall increase in dissolved iron in the surface infused mixed layer, leaving a fraction (about 13-40%) of dissolved Fe not bound by these dissolved Fe-chelators. It is suggested that this fraction would be inorganic colloids. The unexpected persistence of such high inorganic colloids concentrations above inorganic Fe-solubility limits illustrates the peculiar features of the chemical iron cycling in these waters. Obviously, the artificial about hundred-fold increase of overall Fe levels by addition of dissolved inorganic Fe(II) ions yields a major disruption of the natural physical-chemical abundances and reactivity of Fe in seawater. Hence the ensuing responses of the plankton ecosystem, while in itself significant, are not necessarily representative for a natural enrichment, for example by dry or wet deposition of aeolian dust. Ultimately, the temporal changes of the Fe(III)-binding ligand and iron concentrations were dominated by the mixing events that occurred during EISENEX, with storms leading to more than an order of magnitude dilution of the dissolved ligands and iron concentrations. This had strongest impact on the colloidal size class (〉 200 kDa-〈 0.2 µm) where a dramatic decrease of both the colloidal ligand and the colloidal iron levels (Nishioka, J., Takeda, S., de Baar, H.J.W., Croot, P.L., Boye, M., Laan, P., Timmermans, K.R., 2005, Changes in the concentration of iron in different size fractions during an iron enrichment experiment in the open Southern Ocean. Marine Chemistry, doi:10.1016/j.marchem.2004.06.040) was observed.
    Keywords: ANT-XVIII/2; Date/Time of event; DEPTH, water; EisenEx; Elevation of event; European Iron Enrichment Experiment in the Southern Ocean; Event label; GOFLO; Go-Flo bottles; Iron, colloidal; Iron, dissolved; Iron, dissolved, conditional complex stability; Iron, dissolved, inorganic; Iron, dissolved organic/dissolved inorganic ratio; Iron, soluble; Iron, soluble, conditional complex stability; Iron-binding ligand, dissolved; Latitude of event; Longitude of event; Polarstern; PS58/007-6; PS58/009-7; PS58/011-7; PS58/014-7; PS58/038-6; PS58/041-3; PS58/045-3; PS58/046-2; PS58/048-2; PS58/049-4; PS58/061-2; PS58/088-8; PS58/091-2; PS58/092-2; PS58/107-8; PS58 EISENEX; South Atlantic
    Type: Dataset
    Format: text/tab-separated-values, 477 data points
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  • 7
    Publication Date: 2023-05-12
    Keywords: D145; D166; D174; D201; Date/Time of event; DEPTH, water; Event label; GOFLO; Go-Flo bottles; Iron, dissolved; Iron, dissolved, conditional complex stability; Iron, dissolved, inorganic; Iron, standard deviation; Iron-binding ligand, dissolved; Latitude of event; Longitude of event; S. A. Agulhas; Southern Ocean; Standard deviation; Station label; SWEDARP_97/98; SWEDARP_D145; SWEDARP_D166; SWEDARP_D174; SWEDARP_D201
    Type: Dataset
    Format: text/tab-separated-values, 35 data points
    Location Call Number Limitation Availability
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  • 8
    Publication Date: 2023-05-12
    Keywords: CTD-Scanfish; CTD-SF; Date/Time of event; Event label; Iron; Latitude of event; Longitude of event; S. A. Agulhas; Salinity; Southern Ocean; Station label; SWEDARP_97/98; SWEDARP_U00A; SWEDARP_U00B; SWEDARP_U00C; SWEDARP_U00D; SWEDARP_U00E; SWEDARP_U00F; SWEDARP_U00G; SWEDARP_U00H; SWEDARP_U00I; SWEDARP_U232; SWEDARP_U232-2; SWEDARP_U232-3; SWEDARP_U239; SWEDARP_U240; SWEDARP_U241; SWEDARP_U242; SWEDARP_U247; SWEDARP_U248; SWEDARP_U249; SWEDARP_U266; SWEDARP_U267; SWEDARP_U268; SWEDARP_U270; SWEDARP_U271; SWEDARP_U272; SWEDARP_U273; SWEDARP_U274; SWEDARP_U275; SWEDARP_U276; SWEDARP_U277; SWEDARP_U278; SWEDARP_U279; SWEDARP_U281; SWEDARP_U282; SWEDARP_U284; SWEDARP_U285; SWEDARP_U286; SWEDARP_U287; SWEDARP_U288; SWEDARP_U289; SWEDARP_U290; SWEDARP_U291; SWEDARP_U292; Temperature, water; U00A; U00B; U00C; U00D; U00E; U00F; U00G; U00H; U00I; U232; U232-2; U232-3; U239; U240; U241; U242; U247; U248; U249; U266; U267; U268; U270; U271; U272; U273; U274; U275; U276; U277; U278; U279; U281; U282; U284; U285; U286; U287; U288; U289; U290; U291; U292
    Type: Dataset
    Format: text/tab-separated-values, 157 data points
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  • 9
    Publication Date: 2023-05-12
    Keywords: ANT-VII/3; ANT-X/6; ANT-XIII/2; ANT-XVI/3; ANT-XXII/2; CTD/Rosette; CTD-RO; Diffusivity, apparent; Distance; DIVERSE; ELEVATION; Elevation of event; Event label; Iron, dissolved; Latitude of event; Longitude of event; Mixed layer depth; MULT; Multiple investigations; Polarstern; Profile/sampling length; PS14/153; PS14/159; PS14/171; PS14 EPOS I; PS22; PS22/862; PS22/865; PS22/867; PS22/891; PS22/893; PS22/897; PS22/899; PS22/911; PS22/915; PS22/941; PS22/943; PS22/945; PS22/949; PS22/956; PS38; PS38/005; PS38/008; PS38/009; PS38/010; PS38/013-1; PS38/015; PS38/016; PS38/018; PS38/019; PS38/020; PS38/021; PS38/025; PS38/029; PS38/032; PS53; PS53/163-1; PS53/165-1; PS53/167-1; PS53/169-2; PS53/190-1; PS53/194-3; PS53/197-1; PS53/200-1; PS53/202-1; PS53/204-1; PS53/206-1; PS53/207-1; PS67/006-142; PS67/011-3; PS67 ISPOL; Sampling gear, diverse; Scotia Sea; Scotia Sea, southwest Atlantic; South Atlantic Ocean; Station label; Weddell Sea
    Type: Dataset
    Format: text/tab-separated-values, 404 data points
    Location Call Number Limitation Availability
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  • 10
    Publication Date: 2023-05-12
    Keywords: ANT-X/6; ANT-XXII/2; CTD/Rosette; CTD-RO; DEPTH, sediment/rock; DIVERSE; Elevation of event; Event label; Iron, flux; Latitude of event; Longitude of event; Polarstern; PS22; PS22/865; PS22/956; PS67/006-142; PS67/011-3; PS67 ISPOL; Sampling gear, diverse; Scotia Sea, southwest Atlantic; South Atlantic Ocean; Station label; Weddell Sea
    Type: Dataset
    Format: text/tab-separated-values, 8 data points
    Location Call Number Limitation Availability
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