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首页> 外文期刊>Physics and chemistry of minerals >Neon diffusion in goethite, alpha-FeO(OH): a theoretical multi-scale study
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Neon diffusion in goethite, alpha-FeO(OH): a theoretical multi-scale study

机译:Goethite中的霓虹灯扩散,阿尔法 - 费夫(OH):一种理论多种研究

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摘要

The neon diffusion behavior in goethite has been investigated for the purpose of geological (U-Th)/Ne dating, as Ne produced in goethite by nucleogenic reactions related to natural U and Th alpha decay can diffuse out of the crystal. According to previous works, a multi-scale computational approach combining Density Functional Theory studies at the atomic scale and Kinetic Monte Carlo simulations at the macroscopic scale has been used to determine Ne diffusion behavior in goethite. Periodic-DFT calculations have been performed to study the structural, electronic, and magnetic properties of goethite, and therefore to identify the Ne insertion sites in pure defect-free goethite as well as in goethite containing iron-aluminum substitution and goethite containing crystallographic defects, to obtain a crystal structure closest to a natural goethite crystal. The Nudged Elastic Band method was used to define the minimum energy pathway for Ne migration, between neighboring interstitial sites. The Climbing Image Nudged Elastic Band method was adopted to obtain more accuracy on the transition state. The 3-dimensional random walk of Ne jumps between interstitial sites was simulated using the Kinetic Monte Carlo method. We found that a Ne atom diffuses in pure defect-free goethite following a zig-zag pathway along the unoccupied channel of goethite, with an effective activation energy of E-a = 0.50 eV and a pre-exponential factor of D-0 = 6.38 x 10(-4) cm(2) s(-1). Moreover, the iron-aluminum substitution induces a small volume contraction of the unoccupied channel, which increases the energy barrier of Ne diffusion to 0.66 eV. Nevertheless, this energy barrier remains insufficient to retain Ne atom in the goethite structure at surface temperature. However, crystallographic defects impact strongly Ne diffusivity in goethite. In the case of a Schottky defect, i.e. a large vacancy, the Ne atom is retained in the new stable site generated by the vacancy. In the case of a hydrated Fe vacancy, steric constraints remain a barrier that inhibit the Ne jumping between two adjacent unoccupied channels.
机译:在Goethite中的霓虹灯扩散行为已经研究了地质(U-Th)/ Ne约会的目的,因为通过与天然U和Thα衰变有关的核酸反应产生的Ne产生的NE可以扩散出晶体。根据以前的作品,在宏观规模的原子尺度和动力学蒙特卡罗模拟中组合密度泛函理论研究的多尺度计算方法已经用于确定乙腈中的网元扩散行为。已经进行了定期的DFT计算以研究霉菌的结构,电子和磁性,因此鉴定纯缺陷的碎石杆子以及含有铁铝取代和含有晶体缺陷的可甲酸盐中的NE插入位点,获得最接近天然鹅料晶体的晶体结构。使用闪烁的弹性带法用于在相邻的间隙位点之间定义NE迁移的最小能量通路。采用攀爬图像闪烁的弹性带法在过渡状态下获得更高的精度。使用动力学蒙特卡罗方法模拟了间隙网站之间的NE跳跃的三维随机步行。我们发现,在沿着Goethite的未占用通道的Zig-Zag途径之后,NE原子在沿着Goethite的未占用通道的Zig-Zag途径中扩散,具有EA = 0.50eV的有效激活能量和D-0 = 6.38 x 10的预指数因子(-4)cm(2)s(-1)。此外,铁铝取代会引起未占用通道的小体积收缩,这增加了NE扩散的能量屏障至0.66eV。然而,这种能量屏障仍然不足以在表面温度下保持啮合结构中的NE原子。然而,晶体缺陷在粘合体中影响强烈的NE扩散率。在肖特基缺陷的情况下,即较大的空位,NE原子保留在空位产生的新稳定部位。在水合FE空位的情况下,空间约束仍然是屏障抑制两个相邻的未占用通道之间的跳跃。

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