Trace-element partitioning in perovskite: Implications for the geochemistry of kimberlites and other mantle-derived undersaturated rocks

被引:56
作者
Chakhmouradian, Anton R. [1 ]
Reguir, Ekaterina P. [1 ]
Kamenetsky, Vadim S. [2 ,3 ]
Sharygin, Victor V. [4 ]
Golovin, Alexander V. [4 ]
机构
[1] Univ Manitoba, Dept Geol Sci, Winnipeg, MB R3T 2N2, Canada
[2] Univ Tasmania, Sch Earth Sci, Hobart, Tas 7001, Australia
[3] Univ Tasmania, Ctr Ore Deposit Res, Hobart, Tas 7001, Australia
[4] Russian Acad Sci, Siberian Branch, Sobolev Inst Geol & Mineral, Novosibirsk 630090, Russia
基金
加拿大创新基金会; 澳大利亚研究理事会; 加拿大自然科学与工程研究理事会;
关键词
Perovskite; Kimberlite; Katungite; Element partitioning; Crystal fractionation; Magma evolution; PB AGE-DETERMINATION; ND ISOTOPIC ANALYSIS; U-PB; SOUTH-AFRICA; HYPABYSSAL KIMBERLITE; OLDOINYO-LENGAI; OLIVINE; MELT; PETROGENESIS; COEFFICIENTS;
D O I
10.1016/j.chemgeo.2013.01.007
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Perovskite is a common groundmass phase in many mantle-derived undersaturated rocks (e.g., kimberlites), serving as an important repository for rare-earth elements (REE), high-field-strength elements (especially, Ti, Nb and Ta), Th and U. Perovskite-groundmass partition coefficients, calculated for samples of hypabyssal kimberlite from the Chicken Park (Colorado), Iron Mountain (Wyoming) and Udachnaya East (Russia) are largely consistent with those calculated for perovskite from katungite (potassic olivine melilitite) lava from Bunyaruguru, Uganda. The major and trace elements, analyzed by electron-microprobe and laser-probe techniques, can be grouped into strongly incompatible (D-X << 0.1: K, Rb, Zn, Ba, Al), moderately incompatible (D-X = 0.1-0.5: Mn, Ga, Sc, V, Fe), compatible (D-X = 1.0-5.0: Ca, Sr, Hf, heavy REE), and strongly compatible (D-X > 5.0: Y, light- to mid-range REE, Th, U, Ti, Nb, Ta). Sodium gives a wide range of partitioning values in the kimberlitic perovskite, all of which are higher than the Na value for the katungite (D-Na = 0.19). This discrepancy is interpreted to indicate loss of Na from the kimberlitic magma during its emplacement, resulting in low Na levels in the groundmass and overestimated partition coefficients. The calculated Pb values corrected for U-Th decay are also many times higher in the kimberlitic perovskite relative to the katungite (D-Pb = 0.3); the latter value is considered a better estimate because it was not affected by U-Th decay and is in better accord with the partitioning data for other divalent cations. Notably, perovskite has a higher affinity for light REE (LREE), Ho, Ta, Hf and Th relative to heavy REE (HREE), Y, Nb, Zr and U, respectively. Decoupling is particularly strong in the LREE-HREE, Th-U and Nb-Ta pairs, and will produce a noticeable effect on the composition of magma precipitating perovskite even at small degrees of fractionation. Such effects are not observed in kimberlites, even though fractionation of other minerals (notably, olivine) probably does play an important role in the evolution of kimberlites, as demonstrated in the present work on the basis of published data. Perovskite in kimberlites commonly develops a zoning pattern involving a rim-ward decrease in Th/U ratio, Na, REE, Th and Ta contents, and an increase in Nb/Ta value, which can be explained by gradual depletion of the host magma in these elements due to their early sequestration in the core of perovskite crystals and, possibly, Na loss (see above). There are also cases (e.g., Lac de Gras kimberlites) where perovskite develops a discontinuous Nb-Fe-Zr-rich rim. These evolved compositions plot away from the normal zoning trend described above owing to their low Na content for the given level of REE enrichment, indicating that a significant proportion of the latter elements is incorporated in this perovskite as REE(Fe, Al)O-3. Petrographic observations, combined with the published data and lack of any spectroscopic evidence for the presence of water in this perovskite, indicate that this type of zoning formed due to the loss of a volatile phase from the kimberlitic magma, accompanied by perovskite fragmentation and followed by reaction of perovskite fragments with an evolved trace-element-rich melt. (c) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:112 / 131
页数:20
相关论文
共 95 条
  • [1] Adam J, 1997, EUR J MINERAL, V9, P569
  • [2] Trace element partitioning between mica- and amphibole-bearing garnet lherzolite and hydrous basanitic melt: 1. Experimental results and the investigation of controls on partitioning behaviour
    Adam, John
    Green, Trevor
    [J]. CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 2006, 152 (01) : 1 - 17
  • [3] Mineralogy of primary carbonate-bearing hypabyssal kimberlite, de gras, slave province, northwest territories, Canada
    Armstrong, JP
    Wilson, M
    Barnett, RL
    Nowicki, T
    Kjarsgaard, BA
    [J]. LITHOS, 2004, 76 (1-4) : 415 - 433
  • [4] Olivine, and the Origin of Kimberlite
    Arndt, N. T.
    Guitreau, M.
    Boullier, A. -M.
    Le Roex, A.
    Tommasi, A.
    Cordier, P.
    Sobolev, A.
    [J]. JOURNAL OF PETROLOGY, 2010, 51 (03) : 573 - 602
  • [5] Arzamastsev A.A., 2001, RUSS J EARTH SCI, V3, P3, DOI DOI 10.2205/2001ES000054
  • [6] LAM-ICPMS U-Pb dating of kimberlitic perovskite: Eocene-Oligocene kimberlites from the Kundelungu Plateau, DR Congo
    Batumike, J. M.
    Griffin, W. L.
    Belousova, E. A.
    Pearson, N. J.
    O'Reilly, Suzanne Y.
    Shee, S. R.
    [J]. EARTH AND PLANETARY SCIENCE LETTERS, 2008, 267 (3-4) : 609 - 619
  • [7] Controls on the fractionation of isovalent trace elements in magmatic and aqueous systems: Evidence from Y/Ho, Zr/Hf, and lanthanide tetrad effect
    Bau, M
    [J]. CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1996, 123 (03) : 323 - 333
  • [8] Ferric iron in CaTiO3 perovskite as an oxygen barometer for kimberlitic magmas I:: Experimental calibration
    Bellis, Anthony
    Canil, Dante
    [J]. JOURNAL OF PETROLOGY, 2007, 48 (02) : 219 - 230
  • [9] Trace element partitioning between perovskite and kimberlite to carbonatite melt: New experimental constraints
    Beyer, Christopher
    Berndt, Jasper
    Tappe, Sebastian
    Klemme, Stephan
    [J]. CHEMICAL GEOLOGY, 2013, 353 : 132 - 139
  • [10] PREDICTION OF CRYSTAL-MELT PARTITION-COEFFICIENTS FROM ELASTIC-MODULI
    BLUNDY, J
    WOOD, B
    [J]. NATURE, 1994, 372 (6505) : 452 - 454