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Stability of body-centered cubic iron–magnesium alloys in the Earths inner core

机译:地球内部核心中以人体为中心的立方铁-镁合金的稳定性

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摘要

The composition and the structure of the Earth's solid inner core are still unknown. Iron is accepted to be the main component of the core. Lately, the body-centered cubic (bcc) phase of iron was suggested to be present in the inner core, although its stability at core conditions is still in discussion. The higher density of pure iron compared with that of the Earth's core indicates the presence of light element(s) in this region, which could be responsible for the stability of the bcc phase. However, so far, none of the proposed composition models were in full agreement with seismic observations. The solubility of magnesium in hexagonal Fe has been found to increase significantly with increasing pressure, suggesting that Mg can also be an important element in the core. Here, we report a first-principles density functional study of bcc Fe–Mg alloys at core pressures and temperatures. We show that at core conditions, 5–10 atomic percent Mg stabilizes the bcc Fe both dynamically and thermodynamically. Our calculated density, elastic moduli, and sound velocities of bcc Fe–Mg alloys are consistent with those obtained from seismology, indicating that the bcc-structured Fe–Mg alloy is a possible model for the Earth's inner core.
机译:地球固体内核的组成和结构仍然未知。铁被认为是铁心的主要成分。最近,有人建议在内核中存在铁的体心立方(bcc)相,尽管仍在讨论其在内核条件下的稳定性。与地球核心相比,纯铁的密度更高,表明该区域存在轻元素,这可能是bcc相稳定性的原因。然而,到目前为止,没有一个提议的组成模型与地震观测完全一致。已经发现镁在六方铁中的溶解度随着压力的增加而显着增加,这表明镁也可能是核中的重要元素。在这里,我们报告了在核心压力和核心温度下对密闭cc Fe-Mg合金进行第一性原理密度泛函研究。我们表明,在核心条件下,5-10原子百分比的Mg可以动态和热力学地稳定bcc Fe。我们计算出的bcc Fe–Mg合金的密度,弹性模量和声速与从地震学获得的结果一致,表明bcc结构的Fe–Mg合金是地球内核的可能模型。

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