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首页> 外文期刊>Earth and Planetary Science Letters: A Letter Journal Devoted to the Development in Time of the Earth and Planetary System >Spinel–olivine magnesium isotope thermometry in the mantle and implications for the Mg isotopic composition of Earth
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Spinel–olivine magnesium isotope thermometry in the mantle and implications for the Mg isotopic composition of Earth

机译:地幔中的尖晶石-橄榄石镁同位素测温及其对地球镁同位素组成的影响

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摘要

The magnesium isotopic composition of Earth is not yet well constrained despite significant advances in methods for measuring Mg isotope ratios in rocks. One impediment to establishing 25Mg/24Mg and 26Mg/24Mg of Earth is the lack of constraints on inter-mineral Mg isotope fractionations at high temperatures. Advances in computational chemistry afford the capacity to predict quantitatively Mg isotope fractionations among hightemperature minerals. High-precision MC-ICPMS measurements in turn provide the opportunity to test these predictions in well-characterized samples. Toward this end, we present new high-precision 25Mg/24Mg and 26Mg/24Mg measurements of mantle minerals and compare these ratios with predictions for temperaturedependent inter-mineral fractionations. Our results for two San Carlos volcanic field xenoliths show that there is measurable and systematic fractionation in Mg isotope ratios between constituent minerals that are consistent with theoretical predictions. The observed order from highest to lowest 25Mg/24Mg is spinel>clinopyroxene>orthopyroxene>olivine. The fractionation between spinel and olivine suggests an equilibration temperature of 814°+/-60 °C based on the temperature dependence obtained from ab initio calculations. This temperature is consistent with independent T indicators involving spinel, suggesting that spinel and olivine are in Mg isotopic equilibrium in these mantle rocks, and lending credence to the accuracy of the results. Pyroxene, on the other hand, is apparently not in Mg isotopic equilibrium with spinel and olivine if the predicted temperature-dependent fractionations are correct. Consideration of the influences of modal abundances and inter-mineral fractionations on the Mg isotopic compositions of mantle minerals, and comparisons to new meteorite data reported herein, strengthen previous suggestions that the Earth may be different from carbonaceous chondrites in 25Mg/24Mg.
机译:尽管测量岩石中镁同位素比的方法取得了重大进展,但地球的镁同位素组成尚未得到很好的约束。建立25Mg / 24Mg和26Mg / 24Mg地球的一个障碍是在高温下缺乏矿物间Mg同位素分级的限制。计算化学的进步提供了定量预测高温矿物中镁同位素分级的能力。高精度的MC-ICPMS测量反过来提供了在特征明确的样本中测试这些预测的机会。为此,我们提出了新的高精度25Mg / 24Mg和26Mg / 24Mg地幔矿物测量值,并将这些比率与温度依赖性矿物间分馏的预测值进行了比较。我们对两个圣卡洛斯火山场异种岩的研究结果表明,构成矿物之间的镁同位素比存在可测量和系统的分馏,与理论预测相符。从最高到最低25Mg / 24Mg观察到的顺序为尖晶石>斜基次戊二烯>邻二甲苯>橄榄石。尖晶石和橄榄石之间的分馏表明,基于从头算的温度依赖性,平衡温度为814°+/- 60°C。该温度与涉及尖晶石的独立T指标一致,表明尖晶石和橄榄石在这些地幔岩石中处于Mg同位素平衡状态,这为结果的准确性提供了保证。另一方面,如果预测的温度相关分馏是正确的,则烯显然不与尖晶石和橄榄石处于Mg同位素平衡中。考虑到模态丰度和矿物间分馏对地幔矿物Mg同位素组成的影响,并与本文报道的新陨石数据进行比较,加强了先前的建议,即地球可能不同于25Mg / 24Mg的碳质球粒陨石。

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