Experimental evidence for the existence of iron-rich metal in the Earth's lower mantle

被引:489
作者
Frost, DJ
Liebske, C
Langenhorst, F
McCammon, CA
Tronnes, RG
Rubie, DC
机构
[1] Univ Bayreuth, Bayer Geoinst, D-95440 Bayreuth, Germany
[2] Univ Iceland, Nord Volcanol Inst, IS-101 Reykjavik, Iceland
基金
美国国家航空航天局;
关键词
D O I
10.1038/nature02413
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The oxidation state recorded by rocks from the Earth's upper mantle can be calculated from measurements of the distribution of Fe3+ and Fe2+ between the constituent minerals(1-3). The capacity for minerals to incorporate Fe3+ may also be a significant factor controlling the oxidation state of the mantle(4,5), and high-pressure experimental measurements of this property might provide important insights into the redox state of the more inaccessible deeper mantle. Here we show experimentally that the Fe3+ content of aluminous silicate perovskite, the dominant lower-mantle mineral, is independent of oxygen fugacity. High levels of Fe3+ are present in perovskite even when it is in chemical equilibrium with metallic iron. Silicate perovskite in the lower mantle will, therefore, have an Fe3+/total Fe ratio of at least 0.6, resulting in a whole-rock ratio of over ten times that of the upper mantle(5,6). Consequently, the lower mantle must either be enriched in Fe3+ or Fe3+ must form by the disproportionation of Fe2+ to produce Fe3+ plus iron metal. We argue that the lower mantle contains approximately 1 wt% of a metallic iron-rich alloy. The mantle's oxidation state and siderophile element budget have probably been influenced by the presence of this alloy.
引用
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页码:409 / 412
页数:4
相关论文
共 30 条
[1]  
AGEE CB, 1997, LUN PLAN SCI ABSTR, V28, P7
[2]  
ASAHARA Y, IN PRESS PHYS EARTH
[3]   IS THE UPPER-MANTLE METAL-SATURATED [J].
BALLHAUS, C .
EARTH AND PLANETARY SCIENCE LETTERS, 1995, 132 (1-4) :75-86
[4]   HIGH-PRESSURE EXPERIMENTAL CALIBRATION OF THE OLIVINE-ORTHO-PYROXENE-SPINEL OXYGEN GEOBAROMETER - IMPLICATIONS FOR THE OXIDATION-STATE OF THE UPPER MANTLE [J].
BALLHAUS, C ;
BERRY, RF ;
GREEN, DH .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1991, 107 (01) :27-40
[5]   THE GENERATION OF OXIDIZED CO2-BEARING BASALTIC MELTS FROM REDUCED CH4-BEARING UPPER-MANTLE SOURCES [J].
BALLHAUS, C ;
FROST, BR .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1994, 58 (22) :4931-4940
[6]   Vanadium partitioning and the oxidation state of Archaean komatiite magmas [J].
Canil, D .
NATURE, 1997, 389 (6653) :842-845
[7]   Distribution of ferric iron in some upper-mantle assemblages [J].
Canil, D ;
ONeill, HSC .
JOURNAL OF PETROLOGY, 1996, 37 (03) :609-635
[8]   Redox history of the Earth's interior since ∼3900 Ma:: Implications for prebiotic molecules [J].
Delano, JW .
ORIGINS OF LIFE AND EVOLUTION OF THE BIOSPHERE, 2001, 31 (4-5) :311-341
[9]   The effect of Al2O3 on Fe-Mg partitioning between magnesiowustite and magnesium silicate perovskite [J].
Frost, DJ ;
Langenhorst, F .
EARTH AND PLANETARY SCIENCE LETTERS, 2002, 199 (1-2) :227-241
[10]   ABSENCE OF AN ALUMINOUS PHASE IN THE UPPER PART OF THE EARTHS LOWER MANTLE [J].
IRIFUNE, T .
NATURE, 1994, 370 (6485) :131-133