Zircons, isotope ratios and element analyses from tonalite and oxide gabbro of the mid-ocean ridge from ODP Hole 176-735B


Autoria(s): Rioux, Matthew; Bowring, Samuel A; Cheadle, Michael J; John, Barbara E
Cobertura

LATITUDE: -32.723210 * LONGITUDE: 57.266010 * DATE/TIME START: 1997-10-24T13:45:00 * DATE/TIME END: 1997-12-01T19:00:00

Data(s)

12/01/2016

Resumo

A limiting factor in the accuracy and precision of U/Pb zircon dates is accurate correction for initial disequilibrium in the 238U and 235U decay chains. The longest-lived-and therefore most abundant-intermediate daughter product in the 235U isotopic decay chain is 231Pa (T1/2 = 32.71 ka), and the partitioning behavior of Pa in zircon is not well constrained. Here we report high-precision thermal ionization mass spectrometry (TIMS) U-Pb zircon data from two samples from Ocean Drilling Program (ODP) Hole 735B, which show evidence for incorporation of excess 231Pa during zircon crystallization. The most precise analyses from the two samples have consistent Th-corrected 206Pb/238U dates with weighted means of 11.9325 ± 0.0039 Ma (n = 9) and 11.920 ± 0.011 Ma (n = 4), but distinctly older 207Pb/235U dates that vary from 12.330 ± 0.048 Ma to 12.140 ± 0.044 Ma and 12.03 ± 0.24 to 12.40 ± 0.27 Ma, respectively. If the excess 207Pb is due to variable initial excess 231Pa, calculated initial (231Pa)/(235U) activity ratios for the two samples range from 5.6 ± 1.0 to 9.6 ± 1.1 and 3.5 ± 5.2 to 11.4 ± 5.8. The data from the more precisely dated sample yields estimated DPazircon/DUzircon from 2.2-3.8 and 5.6-9.6, assuming (231Pa)/(235U) of the melt equal to the global average of recently erupted mid-ocean ridge basaltic glasses or secular equilibrium, respectively. High precision ID-TIMS analyses from nine additional samples from Hole 735B and nearby Hole 1105A suggest similar partitioning. The lower range of DPazircon/DUzircon is consistent with ion microprobe measurements of 231Pa in zircons from Holocene and Pleistocene rhyolitic eruptions (Schmitt (2007; doi:10.2138/am.2007.2449) and Schmitt (2011; doi:10.1146/annurev-earth-040610-133330)). The data suggest that 231Pa is preferentially incorporated during zircon crystallization over a range of magmatic compositions, and excess initial 231Pa may be more common in zircons than acknowledged. The degree of initial disequilibrium in the 235U decay chain suggested by the data from this study, and other recent high precision datasets, leads to resolvable discordance in high precision dates of Cenozoic to Mesozoic zircons. Minor discordance in zircons of this age may therefore reflect initial excess 231Pa and does not require either inheritance or Pb loss.

Formato

application/zip, 2 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.856811

doi:10.1594/PANGAEA.856811

Idioma(s)

en

Publicador

PANGAEA

Relação

Ferry, J M; Watson, E B (2007): New thermodynamic models and revised calibrations for the Ti-in-zircon and Zr-in-rutile thermometers. Contributions to Mineralogy and Petrology, 154(4), 429-437, doi:10.1007/s00410-007-0201-0

Grimes, Craig B; John, Barbara E; Cheadle, Michael J; Mazdab, Frank K; Wooden, Joseph L; Swapp, Susan; Schwartz, Joshua J (2009): On the occurrence, trace element geochemistry, and crystallization history of zircon from in situ ocean lithosphere. Contributions to Mineralogy and Petrology, 158(6), 757-783, doi:10.1007/s00410-009-0409-2

Hiess, Joe; Condon, Daniel J; McLean, Noah; Noble, Stephen R (2012): 238U/235U Systematics in Terrestrial Uranium-Bearing Minerals. Science, 335(6076), 1610-1614, doi:10.1126/science.1215507

Jaffey, A H; Flynn, K F; Glendenin, L E; Bentley, W C; Essling, A M (1971): Precision measurement of half-lives and specific activities of 235U and 238U. Physical Review C, 4(5), 1889-1906, doi:10.1103/PhysRevC.4.1889

McLean, N M; Bowring, J F; Bowring, Samuel A (2011): An algorithm for U-Pb isotope dilution data reduction and uncertainty propagation. Geochemistry, Geophysics, Geosystems, 12(6), n/a-n/a, doi:10.1029/2010GC003478

Schmitt, Axel K (2007): Ion microprobe analysis of (231Pa)/(235U) and an appraisal of protactinium partitioning in igneous zircon. American Mineralogist, 92(4), 691-694, doi:10.2138/am.2007.2449

Schmitt, Axel K (2011): Uranium Series Accessory Crystal Dating of Magmatic Processes. Annual Review of Earth and Planetary Sciences, 39(1), 321-349, doi:10.1146/annurev-earth-040610-133330

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Rioux, Matthew; Bowring, Samuel A; Cheadle, Michael J; John, Barbara E (2015): Evidence for initial excess 231Pa in mid-ocean ridge zircons. Chemical Geology, 397, 143-156, doi:10.1016/j.chemgeo.2015.01.011

Palavras-Chave #(231Pa)/(235U)magma = 1.00 Zircon DPa/DU, calculated initial conditions after McLean et al. (2011; doi:10.1029/2010GC003478).; (231Pa)/(235U)magma = 2.52 Zircon DPa/DU, calculated initial conditions after McLean et al. (2011; doi:10.1029/2010GC003478).; 206Pb/204Pb; 206Pb/204Pb e; 206Pb/238U; 206Pb/238U e rel; 207Pb/206Pb; 207Pb/206Pb e rel; 207Pb/235U; 231Pa/235U; 231Pa/235U std dev; Age, mineral; Age mineral; Analysis; B; Be; Beryllium; Boron; Calculated; Calculated as Ce/Ce* = CeN/(LaN2/3*NdN1/3).; Calculated as Eu/Eu* = EuN/(SmN*GdN)1/2, where N denotes Chondrite normalized values.; Calculated initial conditionsafter McLean et al. (2011; doi:10.1029/2010GC003478).; Calculated initial conditions after McLean et al. (2011; doi:10.1029/2010GC003478).; Ce; Ce/Ce*; Cerium; Cerium anomaly; D; Depth; DEPTH, sediment/rock; Discordance; Discussions of Th/U in the text rely on the more precise Th/U calculated from the ID-TIMS 208Pb/206Pb and Th-corrected 206Pb/238U.; Dy; Dysprosium; Er; Erbium; Eu; Eu/Eu*; Europium; Europium anomaly; F; Fe; Fluorine; Fractionation and spike corrected isotopic ratios, reduced using EARTHTIME ET535 tracer calibration v.3.; Gadolinium; Gadolinium/Neodymium ratio; Gd; Gd/Nd; Hafnium; Hf; Ho; Holmium; Iron; La; Label; Lanthanum; Lead; Lead 206/Lead 204, error; Lead 206/Lead 204 ratio; Lead 206/Uranium 238; Lead 206/Uranium 238, error relative; Lead 207/Lead 206, error relative; Lead 207/Lead 206 ratio; Lead 207/Uranium 235; Lead 207/Uranium 235, error relative; Locations of spot analyses are show in Figure 2 (571m and 854m) and Figure SM1 (854m); 2 sigma uncertainties are in the last significant digit, with uncertainties following Grimes et al. (2009; doi:10.1007/s00410-009-0409-2).; Lu; Lutetium; Minerals; Nb; Nd; Neodymium; Niobium; Ocean Drilling Program; ODP; ODP sample designation; Of total radiogenic Pb, common Pb and U.; original unit = ppm; original unit = ppm; Ti from 49Ti; P; Pb; Phosphorus; Protactinium 231/Uranium 235 ratio; Protactinium 231/Uranium 235 ratio, standard deviation; Ratio; Ratio of radiogenic to common Pb.; Rho; Samarium; Sample code/label; Sample ID; Sc; Scandium; Sensitive high-resolution ion microprobe (SHRIMP); Sm; Standard deviation; Std dev; Tb; T cal; Temperature, calculated; Terbium; Th; Th/U; Th/U ratio calculated from 208Pb/206Pb and the 206Pb/238U date of the sample.; Th-corrected: 100 - (100 *(206Pb/238U date)/(207Pb/206Pb date)).; Th-corrected correlation coefficient of radiogenic 207Pb*/235U and 206Pb*/238U.; Th-corrected dates using: 238U / 235U = 137.818 (Hiess et al., 2012; doi: 10.1126/science.1215507), and decay constants of 238U = 1.5513 * 10**-10 yr**-1 and 235U = 9.8485 * 10**-10 yr**-1 (Jaffey et al., 1971; doi:10.1103/PhysRevC.4.1889).; Th-corrected fractionation, spike and blank corrected radiogenic isotope ratios. Laboratory blanks were corrected using 206Pb/204Pb = 18.638 ± 0.707, 207Pb/204Pb = 15.494 ± 0.449, 208Pb/204Pb = 37.748 ± 1.227.; Thermal Ionization Mass Spectrometry (TIMS); Thorium; Thorium/Uranium ratio; Thulium; Ti; Ti-in-zircon temperature: calculated using the calibration of Ferry and Watson (2008; doi:10.1007/s00410-007-0201-0) assuming TiO2 = 0.7 and SiO2 = 1 for 571m, TiO2 = 0.7 and SiO2 = 0.7 for 854m and applying no pressure correction.; Titanium; Tm; Total radiogenic Pb, common Pb and U.; U; Uncorrected: 100 - (100 *(206Pb/238U date)/(207Pb/206Pb date)).; Uncorrected correlation coefficient of radiogenic 207Pb*/235U and 206Pb*/238U.; Uncorrected dates using: 238U / 235U = 137.818 (Hiess et al., 2012; doi: 10.1126/science.1215507), and decay constants of 238U = 1.5513 * 10**-10 yr**-1 and 235U = 9.8485 * 10**-10 yr**-1 (Jaffey et al., 1971; doi:10.1103/PhysRevC.4.1889).; Uncorrected fractionation, spike and blank corrected radiogenic isotope ratios. Laboratory blanks were corrected using 206Pb/204Pb = 18.638 ± 0.707, 207Pb/204Pb = 15.494 ± 0.449, 208Pb/204Pb = 37.748 ± 1.227.; Uranium; Y; Yb; Yb/Gd; Yb/Sm; Ytterbium; Ytterbium/Gadolinium ratio; Ytterbium/Samarium ratio; Yttrium
Tipo

Dataset