Research on Mechanical Properties of High-Pressure Anhydrite Based on First Principles

This article focuses on the elucidation of a three-dimensional model of the structure of anhydrite crystal (CaSO<sub>4</sub>). The structure parameters of anhydrite crystal were obtained by means of first principles after structure optimization at 0~120 MPa. In comparison with previous e...

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Bibliographic Details
Main Authors: Xianren Zeng, Shihui You, Linmei Li, Zhangli Lai, Guangyan Hu, Wenjuan Zhang, Yuan Xie
Format: Article
Language:English
Published: MDPI AG 2020-03-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/10/4/240
Description
Summary:This article focuses on the elucidation of a three-dimensional model of the structure of anhydrite crystal (CaSO<sub>4</sub>). The structure parameters of anhydrite crystal were obtained by means of first principles after structure optimization at 0~120 MPa. In comparison with previous experimental and theoretical calculation values, the results we obtained are strikingly similar to the previous data. The elastic constants and physical parameters of anhydrite crystal were also studied by the first-principles method. Based on this, we further studied the Young's modulus and Poisson's ratio of anhydrite crystal, the anisotropy factor, the speed of sound, the minimum thermal conductivity and the hardness of the material. It was shown that the bulk modulus and Poisson's ratio of anhydrite crystal rose slowly with increasing pressure. The anisotropy characteristics of the Young's modulus and shear modulus of anhydrite crystal were consistent under various pressure levels, while the difference in the anisotropy characteristics of the bulk modulus appeared. The acoustic velocities of anhydrite crystal tended to be stable with increasing pressure. The minimum thermal conductivity remained relatively unchanged with increasing pressure. However, the material hardness declined gradually with increasing pressure.
ISSN:2073-4352