Seeing through the magnetite: Reassessing Eoarchean atmosphere composition from Isua (Greenland) ≥3.7 Ga banded iron formations

被引:14
|
作者
Nutman, Allen P. [1 ]
Bennett, Vickie C. [2 ]
Friend, Clark R. L. [3 ]
机构
[1] Univ Wollongong, Sch Earth & Environm Sci, GeoQuEST Res Ctr, Wollongong, NSW 2522, Australia
[2] Australian Natl Univ, Res Sch Earth Sci, GPO Box 4, Canberra, ACT 0200, Australia
[3] Glendale, Tiddington OX9 2LQ, Oxon, England
基金
澳大利亚研究理事会;
关键词
Banded iron formation; Eoarchean; Early atmosphere; Greenalite; Magnetite; SOUTHERN WEST GREENLAND; DALES GORGE MEMBER; SUPRACRUSTAL BELT; HAMERSLEY GROUP; DEPOSITION; OXIDATION; FE; ISOTOPES; MINERALS; COMPLEX;
D O I
10.1016/j.gsf.2017.02.008
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Estimates of early atmosphere compositions from metamorphosed banded iron formations (BIFs) including the well-studied >= 3.7 BIFs of the Isua supracrustal belt (Greenland) are dependent on knowledge of primary versus secondary Fe-mineralogical assemblages. Using new observations from locally well preserved domains, we interpret that a previously assumed primary redox indicator mineral, magnetite, is secondary after sedimentary Fe-clays (probably greenalite) +/- carbonates. Within similar to 3.7 Ga Isua BIF, pre-tectonic nodules of quartz + Fe-rich amphibole +/- calcite reside in a fine-grained (<= 100 mu m) quartz vertical bar magnetite matrix. We interpret the Isua nodule amphibole as the metamorphosed equivalent of primary Fe-rich clays, armoured from diagenetic oxidative reactions by early silica concretion. Additionally, in another low strain lacunae, similar to 3.76 Ga BIF layering is not solid magnetite but instead fine-grained magnetite + quartz aggregates. These magnetite + quartz aggregates are interpreted as the metamorphosed equivalent of Fe-clay-rich layers that were oxidised during diagenesis, because they were not armoured by early silicification. In almost all Isua BIF exposures, this evidence has been destroyed by strong ductile deformation. The Fe-clays likely formed by abiotic reactions between aqueous Fe2+ and silica. These clays along with silica + carbonate were deposited below an oceanic Fe-chemocline as the sedimentary precursors of BIF. Breakdown of the clays on the sea floor may have been by anaerobic oxidation of Fe2+, a mechanism compatible with iron isotopic data previously published on these rocks. The new determinations of the primary redox-sensitive Fe-mineralogy of BIF significantly revise estimates of early Earth atmospheric oxygen and CO2 content, with formation of protolith Fe-rich clays and carbonates compatible with an anoxic Eoarchean atmosphere with much higher CO2 levels than previously estimated for Isua and in the present-day atmosphere. (C) 2017, China University of Geosciences (Beijing) and Peking University. Production and hosting by Elsevier B.V.
引用
收藏
页码:1233 / 1240
页数:8
相关论文
共 12 条
  • [1] Seeing through the magnetite:Reassessing Eoarchean atmosphere composition from Isua(Greenland) ≥3.7 Ga banded iron formations
    Allen PNutman
    Vickie CBennett
    Clark RLFriend
    Geoscience Frontiers, 2017, (06) : 1233 - 1240
  • [2] Seeing through the magnetite:Reassessing Eoarchean atmosphere composition from Isua(Greenland) ≥3.7 Ga banded iron formations
    Allen P.Nutman
    Vickie C.Bennett
    Clark R.L.Friend
    Geoscience Frontiers, 2017, 8 (06) : 1233 - 1240
  • [3] Influence of contamination on banded iron formations in the Isua supracrustal belt, West Greenland: Reevaluation of the Eoarchean seawater compositions
    Aoki, Shogo
    Kabashima, Chiho
    Kato, Yasuhiro
    Hirata, Takafumi
    Komiya, Tsuyoshi
    GEOSCIENCE FRONTIERS, 2018, 9 (04) : 1049 - 1072
  • [4] Influence of contamination on banded iron formations in the Isua supracrustal belt, West Greenland: Reevaluation of the Eoarchean seawater compositions
    Shogo Aoki
    Chiho Kabashima
    Yasuhiro Kato
    Takafumi Hirata
    Tsuyoshi Komiya
    Geoscience Frontiers, 2018, (04) : 1049 - 1072
  • [5] Influence of contamination on banded iron formations in the Isua supracrustal belt, West Greenland: Reevaluation of the Eoarchean seawater compositions
    Shogo Aoki
    Chiho Kabashima
    Yasuhiro Kato
    Takafumi Hirata
    Tsuyoshi Komiya
    Geoscience Frontiers, 2018, 9 (04) : 1049 - 1072
  • [6] Source heterogeneity for the major components of ∼3.7 Ga Banded Iron Formations (Isua Greenstone Belt, Western Greenland):: Tracing the nature of interacting water masses in BIF formation
    Frei, Robert
    Polat, Ali
    EARTH AND PLANETARY SCIENCE LETTERS, 2007, 253 (1-2) : 266 - 281
  • [7] Chlorine Isotope Composition of Apatite from the &gt;3.7 Ga Isua Supracrustal Belt, SW Greenland
    Wudarska, Alicja
    Slaby, Ewa
    Wiedenbeck, Michael
    Birski, Lukasz
    Wirth, Richard
    Goetze, Jens
    Lepland, Aivo
    Kusebauch, Christof
    Kocjan, Izabela
    MINERALS, 2020, 10 (01)
  • [8] Boron isotopes in tourmaline from the ca. 3.7-3.8 Ga Isua supracrustal belt, Greenland: Sources for boron in Eoarchean continental crust and seawater
    Grew, Edward S.
    Dymek, Robert F.
    De Hoog, Jan C. M.
    Harley, Simon L.
    Boak, Jeremy
    Hazen, Robert M.
    Yates, Martin G.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2015, 163 : 156 - 177
  • [9] Microscale heterogeneity of Fe isotopes in &gt;3.71 Ga banded iron formation from the Isua Greenstone Belt, Southwest Greenland
    Whitehouse, Martin J.
    Fedo, Christopher M.
    GEOLOGY, 2007, 35 (08) : 719 - 722
  • [10] In-situ iron isotope analysis of pyrites in ∼3.7 Ga sedimentary protoliths from the Isua supracrustal belt, southern West Greenland
    Yoshiya, Kazumi
    Sawaki, Yusuke
    Hirata, Takafumi
    Maruyama, Shigenori
    Komiya, Tsuyoshi
    CHEMICAL GEOLOGY, 2015, 401 : 126 - 139