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Iron Isotope Characteristics of Hot Springs at Chocolate Pots, Yellowstone National Park

机译:黄石国家公园巧克力罐中温泉的铁同位素特征

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摘要

Chocolate Pots Hot Springs in Yellowstone National Park is a hydrothermal system that contains high aqueous ferrous iron [~0.1 mM Fe(Ⅱ)] at circumneutral pH conditions. This site provides an ideal field environment in which to test our understanding of Fe isotope fractionations derived from laboratory experiments. The Fe(Ⅲ) oxides, mainly produced through Fe(Ⅱ) oxidation by oxygen in the atmosphere, have high ~(56)Fe/~(54)Fe ratios compared with the aqueous Fe(Ⅱ). However, the degree of fractionation is less than that expected in a closed system at isotopic equilibrium. We suggest two explanations for the observed Fe isotope compositions. One is that light Fe isotopes partition into a sorbed component and precipitate out on the Fe(Ⅲ) oxide surfaces in the presence of silica. The other explanation is internal regeneration of isotopically heavy Fe(Ⅱ) via dissimilatory Fe(Ⅲ) reduction farther down the flow path as well as deeper within the mat materials. These findings provide evidence that silica plays an important role in governing Fe isotope fractionation factors between reduced and oxidized Fe. Under conditions of low ambient oxygen, such as may be found on early Earth or Mars, significantly larger Fe isotope variations are predicted, reflecting the more likely attainment of Fe isotope equilibrium associated with slower oxidation rates under low-O_2 conditions.
机译:黄石国家公园的巧克力罐温泉是一个热液系统,在周围pH值条件下含有高含量的亚铁[〜0.1 mM Fe(Ⅱ)]。该站点提供了理想的现场环境,可在其中测试我们对源自实验室实验的铁同位素分馏的理解。与水溶液中的Fe(Ⅱ)相比,主要由大气中的氧气氧化Fe(Ⅱ)产生的Fe(Ⅲ)氧化物具有较高的〜(56)Fe /〜(54)Fe比率。但是,分馏的程度小于在同位素平衡的封闭系统中预期的程度。对于观察到的铁同位素组成,我们提出了两种解释。一种是轻度的Fe同位素分配到被吸附的组分中,并在二氧化硅存在下沉淀在Fe(Ⅲ)氧化物表面上。另一个解释是同位素异型Fe(Ⅱ)通过异化的Fe(Ⅲ)还原而进一步内部流动,而Fe(Ⅲ)还原则沿流路更远且在垫层材料中更深。这些发现提供了证据,表明二氧化硅在控制还原和氧化的铁之间的铁同位素分馏因子中起着重要作用。在低氧环境下(例如在地球早期或火星上发现的),可以预测到明显更大的铁同位素变化,这反映出在低O_2条件下与较低的氧化速率相关的铁同位素平衡的可能性更高。

著录项

  • 来源
    《Astrobiology》 |2013年第11期|1091-1101|共11页
  • 作者单位

    Department of Geoscience, University of Wisconsin-Madison, Madison, Wisconsin, USA,NASA Astrobiology Institute, USA,Department of Earth and Environmental Sciences University of Waterloo 200 University Ave. West Waterloo, ON N2L3G1 Canada;

    Department of Geoscience, University of Wisconsin-Madison, Madison, Wisconsin, USA;

    Department of Geoscience, University of Wisconsin-Madison, Madison, Wisconsin, USA,NASA Astrobiology Institute, USA;

    Department of Geoscience, University of Wisconsin-Madison, Madison, Wisconsin, USA,NASA Astrobiology Institute, USA;

    Department of Geoscience, University of Wisconsin-Madison, Madison, Wisconsin, USA,NASA Astrobiology Institute, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Isotope fractionation; Iron oxidation; Hydrothermal system; Fe isotopes; Yellowstone National Park;

    机译:同位素分馏;铁氧化;水热系统;铁同位素;黄石国家公园;

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