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  • PANGAEA  (8)
  • 2015-2019  (8)
  • 2019  (1)
  • 2015  (7)
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  • 2015-2019  (8)
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  • 1
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    PANGAEA
    In:  Supplement to: Hepach, Helmke; Quack, Birgit; Raimund, Stefan; Fischer, Tim; Atlas, Elliot L; Bracher, Astrid (2015): Halocarbon emissions and sources in the equatorial Atlantic Cold Tongue. Biogeosciences, 12(21), 6369-6387, https://doi.org/10.5194/bg-12-6369-2015
    Publication Date: 2024-02-01
    Description: Halocarbons from oceanic sources contribute to halogens in the troposphere, and can be transported into the stratosphere where they take part in ozone depletion. This paper presents distribution and sources in the equatorial Atlantic from June and July 2011 of the four compounds bromoform (CHBr3), dibromomethane (CH2Br2), methyl iodide (CH3I) and diiodomethane (CH2I2). Enhanced biological production during the Atlantic Cold Tongue (ACT) season, indicated by phytoplankton pigment concentrations, led to elevated concentrations of CHBr3 of up to 44.7 and up to 9.2 pmol/L for CH2Br2 in surface water, which is comparable to other tropical upwelling systems. While both compounds correlated very well with each other in the surface water, CH2Br2 was often more elevated in greater depth than CHBr3, which showed maxima in the vicinity of the deep chlorophyll maximum. The deeper maximum of CH2Br2 indicates an additional source in comparison to CHBr3 or a slower degradation of CH2Br2. Concentrations of CH3I of up to 12.8 pmol/L in the surface water were measured. In contrary to expectations of a predominantly photochemical source in the tropical ocean, its distribution was mostly in agreement with biological parameters, indicating a biological source. CH2I2 was very low in the near surface water with maximum concentrations of only 3.7 pmol/L. CH2I2 showed distinct maxima in deeper waters similar to CH2Br2. For the first time, diapycnal fluxes of the four halocarbons from the upper thermocline into and out of the mixed layer were determined. These fluxes were low in comparison to the halocarbon sea-to-air fluxes. This indicates that despite the observed maximum concentrations at depth, production in the surface mixed layer is the main oceanic source for all four compounds and one of the main driving factors of their emissions into the atmosphere in the ACT-region. The calculated production rates of the compounds in the mixed layer are 34 ± 65 pmol/m**3/h for CHBr3, 10 ± 12 pmol/m**3/h for CH2Br2, 21 ± 24 pmol/m**3/h for CH3I and 384 ± 318 pmol/m**3/h for CH2I2 determined from 13 depth profiles.
    Keywords: SOPRAN; Surface Ocean Processes in the Anthropocene
    Type: Dataset
    Format: application/zip, 2 datasets
    Location Call Number Limitation Availability
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  • 2
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    PANGAEA
    In:  Supplement to: Lennartz, Sinikka T; Marandino, Christa A; von Hobe, Marc; Andreae, Meinrat O; Aranami, Kazushi; Atlas, Elliot L; Berkelhammer, Max; Bingemer, Heinz G; Booge, Dennis; Cutter, Gregory A; Cortes, Pau; Kremser, Stefanie; Law, Cliff S; Marriner, Andrew; Simo, Rafel; Quack, Birgit; Uher, Günther; Xie, Huixiang; Xu, Xiaobin (2020): Marine carbonyl sulfide (OCS) and carbon disulfide (CS2): a compilation of measurements in seawater and the marine boundary layer. Earth System Science Data, 12(1), 591-609, https://doi.org/10.5194/essd-12-591-2020
    Publication Date: 2024-05-11
    Description: The database includes measurements of the trace gases carbonyl sulfide (OCS) and carbon disulfide (CS2) in seawater (in picomol per liter) and the marine boundary layer (parts per trillion, ppt). It consists of individual datasets compiled from published original data, digitalization from publications (pdf documents) and unpublished data. Only shipborne measurements or measurements from time series stations with a dominant marine signal are included. The database contains mainly surface ocean measurements, but few available profiles down to 〉1000 m are included as well. Temporal resolution ranges from 12 minutes to hourly or monthly intervals. The database includes the following metadata (if available): latitude, longitude, depth, time of sampling, meteorological and physical parameters, main reference, method, contributor(s). The database is intended to facilitate model evaluation and the identification of global patterns. Data in excel and txt-files are identical.
    Keywords: air-sea exchange; carbon disulfide; carbonyl sulfide; File content; File format; File name; File size; OCS_CS2_db; trace gas; Uniform resource locator/link to file
    Type: Dataset
    Format: text/tab-separated-values, 30 data points
    Location Call Number Limitation Availability
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  • 3
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    PANGAEA
    In:  Max-Planck-Institut für Meteorologie, Hamburg | Supplement to: Stemmler, Irene; Hense, Inga; Quack, Birgit (2015): Marine sources of bromoform in the global open ocean – global patterns and emissions. Biogeosciences, 12(6), 1967-1981, https://doi.org/10.5194/bg-12-1967-2015
    Publication Date: 2024-06-13
    Description: Bromoform (CHBr3) is one important precursor of atmospheric reactive bromine species that are involved in ozone depletion in the troposphere and stratosphere. In the open ocean bromoform production is linked to phytoplankton that contains the enzyme bromoperoxidase. Coastal sources of bromoform are higher than open ocean sources. However, open ocean emissions are important because the transfer of tracers into higher altitude in the air, i.e. into the ozone layer, strongly depends on the location of emissions. For example, emissions in the tropics are more rapidly transported into the upper atmosphere than emissions from higher latitudes. Global spatio-temporal features of bromoform emissions are poorly constrained. Here, a global three-dimensional ocean biogeochemistry model (MPIOM-HAMOCC) is used to simulate bromoform cycling in the ocean and emissions into the atmosphere using recently published data of global atmospheric concentrations (Ziska et al., 2013) as upper boundary conditions. Our simulated surface concentrations of CHBr3 match the observations well. Simulated global annual emissions based on monthly mean model output are lower than previous estimates, including the estimate by Ziska et al. (2013), because the gas exchange reverses when less bromoform is produced in non-blooming seasons. This is the case for higher latitudes, i.e. the polar regions and northern North Atlantic. Further model experiments show that future model studies may need to distinguish different bromoform-producing phytoplankton species and reveal that the transport of CHBr3 from the coast considerably alters open ocean bromoform concentrations, in particular in the northern sub-polar and polar regions.
    Keywords: File content; File name; File size; SOPRAN; Surface Ocean Processes in the Anthropocene; Uniform resource locator/link to file
    Type: Dataset
    Format: text/tab-separated-values, 28 data points
    Location Call Number Limitation Availability
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  • 4
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    PANGAEA
    In:  IFM-GEOMAR Leibniz-Institute of Marine Sciences, Kiel University
    Publication Date: 2024-06-13
    Keywords: 1,1,1,2-Tetrafluoroethane; 1,1,2-Trichloro-1,2,2-trifluoroethane; 1,1-Dichloro-1-fluoroethane; 1,1-Difluoroethane; 1,2-Dibromotetrafluoroethane; 1,2-Dichloroethane; 1,2-Dichlorotetrafluoroethane; 1-Chlor-1,2,2,2-tetrafluorethan; 1-Chloro-1,1-difluoroethane; ALTITUDE; Benzene; Bromochlorodifluoromethane; Bromoform; Bromomethane; Cape Verde; Cape Verde Atmospheric Observatory; Carbonyl sulfide; Chlorodibromomethane; Chlorodifluoromethane; Chloroform; Chloromethane; CVAO; DATE/TIME; Dibromomethane; Dichlorodifluoromethane; Dichloromethane; Dimethyl sulfate; Ethyl nitrate; Isobutane; Isopentane; Isoprene; Isopropyl nitrate; Methyl acetate; Methyl Chloroform; Methyl iodide; Methyl nitrate; Monitoring station; MONS; n-Butane; n-Hexane; n-Pentane; n-Propyl nitrate; Propane; sec-Butyl nitrate; SOPRAN; Surface Ocean Processes in the Anthropocene; Tetrachlormethan; Tetrachloroethylene; Toluene; Trichlorfluormethan
    Type: Dataset
    Format: text/tab-separated-values, 1939 data points
    Location Call Number Limitation Availability
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  • 5
    Publication Date: 2024-06-25
    Keywords: Bromoiodomethane; Chloroiodomethane; CT; DATE/TIME; DEPTH, water; Dibromochloromethane; Dibromomethane; Diiodomethane; Iodomethane; LATITUDE; LONGITUDE; M91; M91-track; Meteor (1986); SOPRAN; South Pacific Ocean; Surface Ocean Processes in the Anthropocene; Tetrachloromethane; Tribromomethane; Trichloroethane; Trichloromethane; Underway cruise track measurements
    Type: Dataset
    Format: text/tab-separated-values, 658 data points
    Location Call Number Limitation Availability
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  • 6
    Publication Date: 2024-06-25
    Keywords: Bottle number; Bromoiodomethane; Chloroiodomethane; CTD/Rosette; CTD-033; CTD-035; CTD-036; CTD-038; CTD-039; CTD-041; CTD-043; CTD-046; CTD-048; CTD-049; CTD-051; CTD-052; CTD-055; CTD-058; CTD-059; CTD-060; CTD-061; CTD-064; CTD-065; CTD-074; CTD-075; CTD-080; CTD-083; CTD-087; CTD-088; CTD-089; CTD-090; CTD-092; CTD-093; CTD-094; CTD-095; CTD-096; CTD-097; CTD-RO; DATE/TIME; DEPTH, water; Dibromochloromethane; Dibromomethane; Diiodomethane; Event label; Iodomethane; Latitude of event; Longitude of event; M91; M91_1736-1; M91_1737-1; M91_1737-3; M91_1739-1; M91_1739-3; M91_1741-1; M91_1743-1; M91_1746-1; M91_1748-1; M91_1749-1; M91_1751-1; M91_1751-3; M91_1752-8; M91_1754-1; M91_1755-2; M91_1755-4; M91_1756-1; M91_1759-1; M91_1760-1; M91_1766-1; M91_1766-3; M91_1769-1; M91_1771-1; M91_1774-1; M91_1774-3; M91_1775-1; M91_1775-3; M91_1776-3; M91_1777-1; M91_1777-12; M91_1777-4; M91_1777-7; M91_1778-1; Meteor (1986); Optional event label; Sample code/label; SOPRAN; South Pacific Ocean; Surface Ocean Processes in the Anthropocene; Tetrachloromethane; Tribromomethane; Trichloroethane; Trichloromethane
    Type: Dataset
    Format: text/tab-separated-values, 1919 data points
    Location Call Number Limitation Availability
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  • 7
    Publication Date: 2024-07-01
    Keywords: CTD/Rosette; CTD-RO; Date/Time of event; DEPTH, water; Event label; Fluorescence; Latitude of event; Longitude of event; Oxygen; Pressure, water; Salinity; SO218; SO218_CTD1; SO218_CTD10; SO218_CTD11; SO218_CTD12; SO218_CTD13; SO218_CTD14; SO218_CTD15; SO218_CTD16; SO218_CTD17; SO218_CTD18; SO218_CTD19; SO218_CTD2; SO218_CTD20; SO218_CTD21; SO218_CTD22; SO218_CTD23; SO218_CTD24; SO218_CTD25; SO218_CTD26; SO218_CTD27; SO218_CTD28; SO218_CTD29; SO218_CTD3; SO218_CTD30; SO218_CTD31; SO218_CTD32; SO218_CTD33; SO218_CTD34; SO218_CTD35; SO218_CTD4; SO218_CTD5; SO218_CTD6; SO218_CTD7; SO218_CTD8; SO218_CTD9; Sonne; SONNE-SHIVA; Temperature, water
    Type: Dataset
    Format: text/tab-separated-values, 103395 data points
    Location Call Number Limitation Availability
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  • 8
    Publication Date: 2024-07-01
    Keywords: Bottle number; CTD/Rosette; CTD-RO; Date/Time of event; DEPTH, water; Event label; Freon-12 (dichlorodifluoromethane); Latitude of event; Longitude of event; Nitrate; Nitrite; Oxygen; Phosphate; Pressure, water; Salinity; Sample code/label; Silicate; SO218; SO218_CTD1; SO218_CTD10; SO218_CTD11; SO218_CTD12; SO218_CTD13; SO218_CTD14; SO218_CTD15; SO218_CTD16; SO218_CTD17; SO218_CTD18; SO218_CTD19; SO218_CTD2; SO218_CTD20; SO218_CTD21; SO218_CTD22; SO218_CTD24; SO218_CTD25; SO218_CTD26; SO218_CTD27; SO218_CTD28; SO218_CTD29; SO218_CTD3; SO218_CTD30; SO218_CTD31; SO218_CTD32; SO218_CTD33; SO218_CTD34; SO218_CTD35; SO218_CTD4; SO218_CTD5; SO218_CTD6; SO218_CTD8; SO218_CTD9; Sonne; SONNE-SHIVA; Sulfur hexafluoride, SF6; Temperature, water
    Type: Dataset
    Format: text/tab-separated-values, 5669 data points
    Location Call Number Limitation Availability
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