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Electrical resistivity of fcc phase iron hydrides at high pressures and temperatures

机译:fcc相氢化铁在高压和高温下的电阻率

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摘要

We measured the electrical resistivity of face-centered-cubic (fcc) structured iron hydrides at high pressures up to 65 GPa and high temperatures in a laser-heated diamond anvil cell. The results indicate that the resistivity of stoichiometric fcc FeHx (x similar to 1.0) is smaller than that of fcc Fe at the same pressure and temperature conditions. The same behavior was also observed in fcc FeNiHx (x similar to 1.0). On the other hand, hydrogen-poor fcc FeHx (x 0.77) showed a resistivity comparable to that of the fcc phase of pure iron. Therefore, we conclude that the stoichiometric fcc Fe (-Ni) hydride is more conductive than Fe (-Ni) with the same crystal symmetry, and the impurity resistivity of hydrogen in Fe is vanishingly small. Even if hydrogen is the major light element in the Earth's core, it would have little influence on the electrical and thermal conductivity of Fe-Ni alloys, and hence the thermal evolution of the core. (C) 2018 Academie des sciences. Published by Elsevier Masson SAS. All rights reserved.
机译:我们在高达65 GPa的高压和高温下在激光加热的金刚石砧盒中测量了面心立方(fcc)结构的氢化铁的电阻率。结果表明,在相同的压力和温度条件下,化学计量的fcc FeHx(x近似于1.0)的电阻率小于fcc Fe。在fcc FeNiHx(x类似于1.0)中也观察到了相同的行为。另一方面,贫氢的fcc FeHx(x <0.77)的电阻率可与纯铁的fcc相媲美。因此,我们得出结论:化学计量的fcc Fe(-Ni)氢化物比具有相同晶体对称性的Fe(-Ni)导电性更高,并且Fe中氢的杂质电阻率几乎消失。即使氢是地球核心中的主要轻元素,它也不会对Fe-Ni合金的电导率和导热率产生任何影响,因此也不会影响核心的热演化。 (C)2018科学院。由Elsevier Masson SAS发布。版权所有。

著录项

  • 来源
    《Comptes rendus 》 |2019年第3期| 147-153| 共7页
  • 作者单位

    Tokyo Inst Technol, Dept Earth & Planetary Sci, Meguro Ku, Tokyo, Japan;

    Tokyo Inst Technol, Dept Earth & Planetary Sci, Meguro Ku, Tokyo, Japan;

    Tokyo Inst Technol, Earth Life Sci Inst, Meguro Ku, Tokyo, Japan|Univ Tokyo, Dept Earth & Planetary Sci, Bunkyo Ku, Tokyo, Japan;

    Japan Synchrotron Radiat Res Inst, Sayo, Hyogo, Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Iron hydride; Electrical resistivity; Earth's core; Core density deficit;

    机译:氢化铁;电阻率;地球核心;核心密度不足;

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