A Computational Mineralogy Study of the Crystal Structure and Stability of Aluminum Silicate (Al 2 SiO 5 ) Minerals

김주혁, 손상보, 권기덕
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Abstract

Aluminum silicates (Al2SiO5) undergo phase transitions among kyanite, andalusite, and sillimanite depending on temperature and pressure conditions. The minerals are often used as an important indicator of the degree of metamorphism for certain metamorphic rocks. In this study, we have applied classical molecular dynamics (MD) simulations and density functional theory (DFT) to the aluminum silicates. We examined the crystal structures as a function of applied pressure and the corresponding stabilities based on calculated enthalpies at each pressure. In terms of the lattice parameters, both methods showed that the volume decreases as the pressure increases as observed in the experiment. In particular, DFT results differed from experimental results by much less than 1%. As to the relative stability, however, both methods showed different levels of accuracy. In the MD simulations, a transition pressure at which the relative stability between two minerals reverse could not be determined because the enthalpies were insensitive to the applied pressure. On the other hand, in DFT calculations, the relative stability relation among the three minerals was consistent with experiment, although the transition pressure was strongly dependent on the choice of the electronic exchange-correlation functional.
硅酸铝(al2sio5)矿物晶体结构和稳定性的计算矿物学研究
铝硅酸盐(Al2SiO5)在蓝晶石、红柱石和硅线石之间发生相变,取决于温度和压力条件。矿物常被用作某些变质岩变质程度的重要标志。在本研究中,我们将经典分子动力学(MD)模拟和密度泛函理论(DFT)应用于硅酸铝。我们研究了晶体结构作为施加压力的函数和基于计算焓在每个压力下的相应稳定性。在晶格参数方面,两种方法均显示体积随压力的增加而减小。特别是,DFT结果与实验结果的差异远小于1%。然而,在相对稳定性方面,两种方法的准确度不同。在MD模拟中,由于焓对施加的压力不敏感,无法确定两种矿物之间相对稳定性反转的过渡压力。另一方面,在DFT计算中,三种矿物之间的相对稳定性关系与实验一致,尽管过渡压力强烈依赖于电子交换相关泛函的选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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