Sutorius, Mara; Mori, Corinna; Greskowiak, Janek; Boettcher, Lea; Bunse, Carina; Dittmar, Thorsten; Dlugosch, Leon; Hintz, Nils Hendrik; Simon, Meinhard; Striebel, Maren; Pahnke, Katharina (2022): Concentrations, patterns and organic complexation of dissolved rare earth elements during an artificially induced phytoplankton spring bloom [dataset bundled publication]. PANGAEA, https://doi.org/10.1594/PANGAEA.942759
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Abstract:
In order to investigate the influence of organic matter (OM) on rare earth element (REE) distributions and patterns in the marine environment we monitored concentrations of dissolved REEs (dREEs) during an artificially induced spring bloom. Our mesocosm approach mimicked a neritic North Sea water body. Three biological replicates (P2-P4) were inoculated with a phytoplankton and associated bacterial community, which was retrieved in March 2018 from the southern North Sea. The incubation was monitored for 38 days. The experiment additionally covered the investigation of two biota-free controls. A variety of parameters were sampled, the results of some are published by Mori et al. (2021). Samples for dREE analyses were taken at intervals of 1-5 days. Preconcentration, analysis and quantification of dREEs followed the method described by Behrens et al. (2016). In order to investigate possible complexation of dREEs with components of the dissolved OM pool, a PHREEQC model was written that simulated chemical speciation of the dREEs in the mesocosms. A new databank was created that includes stability constants for complexes of dREEs with the main inorganic ligands (Cl⁻, SO₄⁻, OH⁻, CO₃⁻) as well as with the strong organic ligand desferrioxamine B (DFOB) after Christenson and Schijf (2011). The model outcome includes concentrations of inorganic and organic dREE complexes as well as abundances as free ions (REE3+) and total dREE concentrations. Additionally, we calculated the proportions of the different complexes to the total dREE pool. We used two different approaches for the PHREEQC model approach that followed Schijf et al. (2015) and were characterized by the concentration of the strong organic ligand and the resulting proportion of organic complexes to the dREE pool. The 'High-DOC' approach results in a maximal proportion of organic REE-DOC complexes of 40%, the 'Low-DOC' approach results in maximum of 10% organic complexes. To keep an eye on variations in carbonate complexes, total alkalinity (TA) was monitored as well. TA was sampled daily, for the analysis we used a multiscan GO microplate spectrophotometer (Thermo Scientific) and followed the method described by Sarazin et al. (1999).
Supplement to:
Sutorius, Mara; Mori, Corinna; Greskowiak, Janek; Boettcher, Lea; Bunse, Carina; Dittmar, Thorsten; Dlugosch, Leon; Hintz, Nils Hendrik; Simon, Meinhard; Striebel, Maren; Pahnke, Katharina (2022): Rare earth element behaviour in seawater under the influence of organic matter cycling during a phytoplankton spring bloom – A mesocosm study. Frontiers in Marine Science, 9, 895723, https://doi.org/10.3389/fmars.2022.895723
Related to:
Behrens, Melanie K; Muratli, Jesse M; Pradoux, Catherine; Wu, Yingzhe; Böning, Philipp; Brumsack, Hans-Jürgen; Goldstein, Steven L; Haley, Brian A; Jeandel, Catherine; Paffrath, Ronja; Pena, Leopoldo D; Schnetger, Bernhard; Pahnke, Katharina (2016): Rapid and precise analysis of rare earth elements in small volumes of seawater - Method and intercomparison. Marine Chemistry, 186, 110-120, https://doi.org/10.1016/j.marchem.2016.08.006
Christenson, Emily A; Schijf, Johan (2011): Stability of YREE complexes with the trihydroxamate siderophore desferrioxamine B at seawater ionic strength. Geochimica et Cosmochimica Acta, 75(22), 7047-7062, https://doi.org/10.1016/j.gca.2011.09.022
Mori, Corinna; Beck, Melanie; Hintz, Nils Hendrik; Merder, Julian; Bunse, Carina; Dittmar, Thorsten; Dlugosch, Leon; Böttcher, Lea; Pahnke, Katharina; Striebel, Maren; Schnetger, Bernhard; Simon, Meinhard; Brumsack, Hans-Jürgen (2021): Biogeochemical thallium cycling during a mesocosm phytoplankton spring bloom: Biotic versus abiotic drivers. Geochimica et Cosmochimica Acta, 313, 257-276, https://doi.org/10.1016/j.gca.2021.08.002
Sarazin, Gérard; Michard, Gil; Prevot, François (1999): A rapid and accurate spectroscopic method for alkalinity measurements in sea water samples. Water Research, 33(1), 290-294, https://doi.org/10.1016/S0043-1354(98)00168-7
Schijf, Johan; Christenson, Emily A; Byrne, R H (2015): YREE scavenging in seawater: A new look at an old model. Marine Chemistry, 177, 460-471, https://doi.org/10.1016/j.marchem.2015.06.010
Coverage:
Date/Time Start: 2018-03-20T00:00:00 * Date/Time End: 2018-04-27T00:00:00
Event(s):
North_Sea-Mesocosm * Date/Time Start: 2018-03-20T00:00:00 * Date/Time End: 2018-04-27T00:00:00 * Method/Device: Planktotrons
License:
Creative Commons Attribution 4.0 International (CC-BY-4.0)
Size:
4 datasets
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Datasets listed in this bundled publication
- Sutorius, M; Mori, C; Greskowiak, J et al. (2022): Concentration of dissolved rare earth elements during an artificially induced phytoplankton spring bloom. https://doi.org/10.1594/PANGAEA.942754
- Sutorius, M; Mori, C; Greskowiak, J et al. (2022): Organic complexation of dissolved rare earth elements during an artificially induced phytoplankton spring bloom- a PHREEQC model approach. https://doi.org/10.1594/PANGAEA.942758
- Sutorius, M; Mori, C; Greskowiak, J et al. (2022): Fractionation patterns, normalized concentrations and standards of dissolved rare earth elements during an artificially induced phytoplankton spring bloom. https://doi.org/10.1594/PANGAEA.942757
- Sutorius, M; Mori, C; Greskowiak, J et al. (2022): Investigation of Total Alkalinity during an artificially induced phytoplankton spring bloom. https://doi.org/10.1594/PANGAEA.942750