U-series ages from calcitic cold-water corals from the Amundsen Sea


Autoria(s): Gutjahr, Marcus; Vance, Derek; Hoffmann, Dirk; Hillenbrand, Claus-Dieter; Foster, Gavin L; Rae, James William B; Kuhn, Gerhard
Cobertura

MEDIAN LATITUDE: -69.356979 * MEDIAN LONGITUDE: -122.710673 * SOUTH-BOUND LATITUDE: -69.791600 * WEST-BOUND LONGITUDE: -125.977600 * NORTH-BOUND LATITUDE: -69.137100 * EAST-BOUND LONGITUDE: -120.915500 * DATE/TIME START: 2006-03-26T13:15:00 * DATE/TIME END: 2010-03-24T03:06:00

Data(s)

21/11/2013

Resumo

Radiocarbon and uranium-thorium dating results are presented from a genus of calcitic Antarctic cold-water octocorals (family Coralliidae), which were collected from the Marie Byrd Seamounts in the Amundsen Sea (Pacific sector of the Southern Ocean) and which to date have not been investigated geochemically. The geochronological results are set in context with solution and laser ablation-based element/Ca ratios (Li, B, Mg, Mn, Sr, Ba, U, Th). Octocoral radiocarbon ages on living corals are in excellent agreement with modern ambient deep-water D14C, while multiple samples of individual fossil coral specimens yielded reproducible radiocarbon ages. Provided that local radiocarbon reservoir ages can be derived for a given time, fossil Amundsen Sea octocorals should be reliably dateable by means of radiocarbon. In contrast to the encouraging radiocarbon findings, the uranium-series data are more difficult to interpret. The uranium concentration of these calcitic octocorals is an order of magnitude lower than in the aragonitic hexacorals that are conventionally used for geochronological investigations. While modern and Late Holocene octocorals yield initial d234U in good agreement with modern seawater, our results reveal preferential inward diffusion of dissolved alpha-recoiled 234U and its impact on fossil coral d234U. Besides alpha-recoil related 234U diffusion, high-resolution sampling of two fossil octocorals further demonstrates that diagenetic uranium mobility has offset apparent coral U-series ages. Combined with the preferential alpha-recoil 234U diffusion, this process has prevented fossil octocorals from preserving a closed system U-series calendar age for longer than a few thousand years. Moreover, several corals investigated contain significant initial thorium, which cannot be adequately corrected for because of an apparently variable initial 232Th/230Th. Our results demonstrate that calcitic cold-water corals are unsuitable for reliable U-series dating. Mg/Ca ratios within single octocoral specimens are internally strikingly homogeneous, and appear promising in terms of their response to ambient temperature. Magnesium/lithium ratios are significantly higher than usually observed in other deep marine calcifiers and for many of our studied corals are remarkably close to seawater compositions. Although this family of octocorals is unsuitable for glacial deep-water D14C reconstructions, our findings highlight some important differences between hexacoral (aragonitic) and octocoral (calcitic) biomineralisation. Calcitic octocorals could still be useful for trace element and some isotopic studies, such as reconstruction of ambient deep water neodymium isotope composition or pH, via boron isotopic measurements.

Formato

application/zip, 3 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.839330

doi:10.1594/PANGAEA.839330

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Gutjahr, Marcus; Vance, Derek; Hoffmann, Dirk; Hillenbrand, Claus-Dieter; Foster, Gavin L; Rae, James William B; Kuhn, Gerhard (2013): Structural limitations in deriving accurate U-series ages from calcitic cold-water corals contrast with robust coral radiocarbon and Mg/Ca systematics. Chemical Geology, 355, 69-87, doi:10.1016/j.chemgeo.2013.07.002

Palavras-Chave #(U-series age) - (calibrated 14C age); 230Th/238U; 230Th/238U std dev; 232Th; 232Th std dev; 234U/238U; 234U/238U e rel; 234U/238U std dev; 238U; 238U std dev; Age, 14C AMS; Age, dated; Age, dated material; Age, dated standard deviation; Age, difference; Age dated; Age diff; Age std dev; apparent age, calculated using isoplot version 3.0; Assuming modern R (1391 yrs); Assuming modern R (2000 yrs); Assuming modern R (2500 yrs); AWI_Paleo; Ba/Ca; Barium/Calcium ratio; Calculated; Calendar years; Calendar years, standard deviation; Cal yrs; Cal yrs std dev; Comment; corrected; Dated material; Event; ICP-MS, solution; initial; Label; Laboratory of Ion Beam Physics at ETHZ; Li/Ca; Lithium/Calcium ratio; Magnesium/Calcium ratio; Magnesium/Lithium ratio; measured; measured; d234U = ([234U/238U]activity - 1) × 100; Method; Method comment; Mg/Ca; Mg/Li; Paleoenvironmental Reconstructions from Marine Sediments @ AWI; Sample code/label; Sr/Ca; Strontium/Calcium ratio; The degree of initial 230Th contamination is indicated by the measured [230Th/232Th] activity ratio; Thorium 230/Uranium 238 activity ratio; Thorium 230/Uranium 238 activity ratio, standard deviation; Thorium 232; Thorium 232, standard deviation; Uranium 234/Uranium 238 activity ratio; Uranium 234/Uranium 238 activity ratio, error, relative; Uranium 234/Uranium 238 activity ratio, standard deviation; Uranium 238; Uranium 238, standard deviation
Tipo

Dataset