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Vils, Flurin; Pelletier, Laure; Kalt, Angelika; Müntener, Othmar; Ludwig, Thomas (2008): Geochemistry of serpentinized peridotites from ODP Holes 207-1272A and 207-1274A [dataset publication series]. PANGAEA, https://doi.org/10.1594/PANGAEA.783681, Supplement to: Vils, F et al. (2008): The Lithium, Boron and Beryllium content of serpentinized peridotites from ODP Leg 209 (Sites 1272A and 1274A): Implications for lithium and boron budgets of oceanic lithosphere. Geochimica et Cosmochimica Acta, 72(22), 5475-5504, https://doi.org/10.1016/j.gca.2008.08.005

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Abstract:
Despite the key importance of altered oceanic mantle as a repository and carrier of light elements (B, Li, and Be) to depth, its inventory of these elements has hardly been explored and quantified. In order to constrain the systematics and budget of these elements we have studied samples of highly serpentinized (>50%) spinel harzburgite drilled at the Mid-Atlantic Ridge (Fifteen-Twenty Fracture zone, ODP Leg 209, Sites 1272A and 1274A). In-situ analysis by secondary ion mass spectrometry reveals that the B, Li and Be contents of mantle minerals (olivine, orthopyroxene, and clinopyroxene) remain unchanged during serpentinization. B and Li abundances largely correspond to those of unaltered mantle minerals whereas Be is close to the detection limit. The Li contents of clinopyroxene are slightly higher (0.44-2.8 µg/g) compared to unaltered mantle clinopyroxene, and olivine and clinopyroxene show an inverse Li partitioning compared to literature data. These findings along with textural observations and major element composition obtained from microprobe analysis suggest reaction of the peridotites with a mafic silicate melt before serpentinization. Serpentine minerals are enriched in B (most values between 10 and 100 µg/g), depleted in Li (most values below 1 µg/g) compared to the primary phases, with considerable variation within and between samples. Be is at the detection limit. Analysis of whole rock samples by prompt gamma activation shows that serpentinization tends to increase B (10.4-65.0 µg/g), H2O and Cl contents and to lower Li contents (0.07-3.37 µg/g) of peridotites, implying that-contrary to alteration of oceanic crust-B is fractionated from Li and that the B and Li inventory should depend essentially on rock-water ratios. Based on our results and on literature data, we calculate the inventory of B and Li contained in the oceanic lithosphere, and its partitioning between crust and mantle as a function of plate characteristics. We model four cases, an ODP Leg 209-type lithosphere with almost no igneous crust, and a Semail-type lithosphere with a thick igneous crust, both at 1 and 75 Ma, respectively. The results show that the Li contents of the oceanic lithosphere are highly variable (17-307 kg in a column of 1 m * 1 m * thickness of the lithosphere (kg/col)). They are controlled by the primary mantle phases and by altered crust, whereas the B contents (25-904 kg/col) depend entirely on serpentinization. In all cases, large quantities of B reside in the uppermost part of the plate and could hence be easily liberated during slab dehydration. The most prominent input of Li into subduction zones is to be expected from Semail-type lithosphere because most of the Li is stored at shallow levels in the plate. Subducting an ODP Leg 209-type lithosphere would mean only very little Li contribution from the slab. Serpentinized mantle thus plays an important role in B recycling in subduction zones, but it is of lesser importance for Li.
Project(s):
Coverage:
Median Latitude: 15.396257 * Median Longitude: -45.901496 * South-bound Latitude: 15.094430 * West-bound Longitude: -46.676360 * North-bound Latitude: 15.647780 * East-bound Longitude: -44.971660
Date/Time Start: 2003-06-07T07:45:00 * Date/Time End: 2003-06-18T21:45:00
Event(s):
209-1272A * Latitude: 15.094430 * Longitude: -44.971660 * Date/Time Start: 2003-06-07T07:45:00 * Date/Time End: 2003-06-12T07:30:00 * Elevation: -2559.8 m * Penetration: 131 m * Recovery: 37.5 m * Location: South Atlantic Ocean * Campaign: Leg209 * Basis: Joides Resolution * Method/Device: Drilling/drill rig (DRILL) * Comment: 27 cores; 131 m cored; 0 m drilled; 28.6 % recovery
209-1274A * Latitude: 15.647780 * Longitude: -46.676360 * Date/Time Start: 2003-06-15T00:30:00 * Date/Time End: 2003-06-18T21:45:00 * Elevation: -3939.8 m * Penetration: 155.8 m * Recovery: 34.65 m * Location: South Atlantic Ocean * Campaign: Leg209 * Basis: Joides Resolution * Method/Device: Drilling/drill rig (DRILL) * Comment: 28 cores; 155.8 m cored; 0 m drilled; 22.2 % recovery
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11 datasets

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Datasets listed in this publication series

  1. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 3b) Geochemistry of clinopyroxene of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783667
  2. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 4) Light element contents of minerals of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783676
  3. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 3e) Geochemistry of magnetite of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783672
  4. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 1) Mineralogy of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783664
  5. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 3a) Geochemistry of olivine of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783666
  6. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 3c) Geochemistry of orthopyroxene of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783668
  7. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 3f) Geochemistry of serpentine and serpentine matrix of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783675
  8. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 3d) Geochemistry of spinel of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783669
  9. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 5) Whole rock chemistry of ODP Holes 207-1272A and 207-1274A. https://doi.org/10.1594/PANGAEA.783680
  10. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 3e) Geochemistry of chlorite and phlogopite of ODP Hole 207-1274A. https://doi.org/10.1594/PANGAEA.783671
  11. Vils, F; Pelletier, L; Kalt, A et al. (2008): (Table 2) Geochemistry of serpentine of ODP Hole 207-1274A. https://doi.org/10.1594/PANGAEA.783665