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Quandt, Dennis; Kurz, Walter; Micheuz, Peter (2020): REE and Y of calcite, quartz, and analcime veins from the Troodos ophiolite and Izu-Bonin forearc/rear arc [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.920675, In: Quandt, D et al. (2020): Isotopic compositions, trace element concentrations, and fluid inclusion homogenization temperatures of calcite, quartz, and analcime veins from the Troodos ophiolite and Izu-Bonin forearc/rear arc [dataset bundled publication]. PANGAEA, https://doi.org/10.1594/PANGAEA.920681

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Related to:
Quandt, Dennis; Kurz, Walter; Micheuz, Peter (2021): Post-magmatic fracturing, fluid flow, and vein mineralization in supra-subduction zones: a comparative study on vein calcites from the Troodos ophiolite and the Izu–Bonin forearc and rear arc. International Journal of Earth Sciences, 110(2), 627-649, https://doi.org/10.1007/s00531-020-01978-7
Quandt, Dennis; Micheuz, Peter; Kurz, Walter; Bernasconi, Stefano M; Hippler, Dorothee; Krenn, Kurt; Hauzenberger, C A (2020): Geochemistry and Microtextures of Vein Calcites Pervading the Izu‐Bonin Forearc and Rear Arc Crust: New Insights From IODP Expeditions 352 and 351. Geochemistry, Geophysics, Geosystems, 21(2), https://doi.org/10.1029/2019GC008745
Quandt, Dennis; Micheuz, Peter; Kurz, Walter; Kluge, Tobias; Boch, Ronny; Hippler, Dorothee; Krenn, Kurt; Hauzenberger, C A (2019): Geochemistry of Vein Calcites Hosted in the Troodos Pillow Lavas and Their Implications for the Timing and Physicochemical Environment of Fracturing, Fluid Circulation, and Vein Mineral Growth. Geochemistry, Geophysics, Geosystems, 20(12), 5913-5938, https://doi.org/10.1029/2019GC008369
Further details:
McLennan, Scott M (1989): Rare earth elements in sedimentary rocks; influence of provenance and sedimentary processes. Reviews in Mineralogy & Geochemistry, 21, 169-200
Tostevin, Rosalie; Shields, Graham; Tarbuck, Gary M; He, Tianchen; Clarkson, Matthew O; Wood, Rachel A (2016): Effective use of cerium anomalies as a redox proxy in carbonate-dominated marine settings. Chemical Geology, 438, 146-162, https://doi.org/10.1016/j.chemgeo.2016.06.027
Coverage:
Median Latitude: 33.596525 * Median Longitude: 54.225852 * South-bound Latitude: 27.383588 * West-bound Longitude: 32.276886 * North-bound Latitude: 35.191503 * East-bound Longitude: 142.753740
Date/Time Start: 2014-06-30T09:00:00 * Date/Time End: 2014-08-27T07:45:00
Minimum DEPTH, sediment/rock: 237.02 m * Maximum DEPTH, sediment/rock: 1519.73 m
Event(s):
351-U1438E * Latitude: 27.383588 * Longitude: 134.318116 * Date/Time: 2014-06-30T09:00:00 * Elevation: -1319.8 m * Location: Amami-Sankaku basin * Method/Device: Core drilling (CDRILL)
352-U1439C * Latitude: 28.407485 * Longitude: 142.608947 * Date/Time: 2014-08-27T07:45:00 * Elevation: -3129.0 m * Location: Izu-Bonin-Mariana fore arc (IBM) * Campaign: EXP352 * Basis: Joides Resolution * Method/Device: Core drilling (CDRILL)
352-U1440B * Latitude: 28.449960 * Longitude: 142.753740 * Date/Time: 2014-08-11T07:35:00 * Elevation: -4775.0 m * Location: Izu-Bonin-Mariana fore arc (IBM) * Campaign: EXP352 * Basis: Joides Resolution * Method/Device: Core drilling (CDRILL)
Comment:
< = below detection limit
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1Event labelEventQuandt, Dennis
2Sample IDSample IDQuandt, Dennis
3Sample code/labelSample labelQuandt, DennisDSDP/ODP/IODP sample designation
4CommentCommentQuandt, Dennisvein type
5LocationLocationQuandt, Dennis
6Area/localityAreaQuandt, Dennis
7DEPTH, sediment/rockDepth sedmQuandt, DennisGeocode
8Latitude of eventLatitudeQuandt, Dennis
9Longitude of eventLongitudeQuandt, Dennis
10LanthanumLamg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
11CeriumCemg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
12PraseodymiumPrmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
13NeodymiumNdmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
14SamariumSmmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
15EuropiumEumg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
16GadoliniumGdmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
17TerbiumTbmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
18DysprosiumDymg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
19YttriumYmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
20HolmiumHomg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
21ErbiumErmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
22ThuliumTmmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
23YtterbiumYbmg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
24LutetiumLumg/kgQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
25Yttrium/Holmium ratioY/HoQuandt, DennisLA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer
26Europium anomalyEu/Eu*Quandt, DennisCalculated using equation Eu/Eu*PAAS = 2* EuPAAS/(SmPAAS+GdPAAS) of Tostevin et al. (2016)Eu anomalies (Eu/Eu*PAAS) were calculated using Post-Archean Australian Shale (PAAS)-normalized values (McLennan, 1989)
Size:
5424 data points

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