Dar Sajad Ahmad, Sharma Ramesh, Mishra Abhishek Kr
Department of Physics, Govt. Motilal Vigyan Mahavidyalya College, Bhopal, 462008, Madhya Pradesh State, India.
Dept.of Applied Science, Feroze Gandhi Institute of Engineering and Technology, Raebareli, 229001, India.
J Mol Graph Model. 2019 Jul;90:120-127. doi: 10.1016/j.jmgm.2019.04.013. Epub 2019 Apr 30.
Cubic perovskite oxides RbSbO and CsSbO have been investigated for structural stability, electronic results, elastic, mechanical stability and thermodynamic results by most accurate density functional theory (DFT). The optimization has been completed using Local density approximation (LDA) and Generalized gradient approximation (GGA) within the scheme of Perdew, Burke and Ernzrhof (PBE). The ground state optimized results present minimum energy within GGA for both compounds. Band structure and density of state results both present the metallic nature for these compounds. The mechanical properties like Young's modulus, Bulk modulus etc. have been deduced from elastic values. RbSbO was found to have more resistance to compression as compared to strength CsSbO. Both the materials were found to have brittle nature from Poisson's ratio (υ), Cauchy's pressure (C-C) and Pugh ratio (B/G) criteria. The melting temperature was calculated to be 2148 ± 300 K, 1746 ± 300 K, respectively for RbSbO and CsSbO. Pressure and temperature variation has been used for calculation of thermodynamic parameters within quasi-harmonic Debye approximation. The nature of Bulk modulus, cell volume, specific heat capacity and thermal expansion has been computed in the temperature range of 0 K-900 K and pressure varied from 0 GPa to 15 GPa.
已通过最精确的密度泛函理论(DFT)对立方钙钛矿氧化物RbSbO和CsSbO的结构稳定性、电子结果、弹性、力学稳定性和热力学结果进行了研究。在Perdew、Burke和Ernzrhof(PBE)方案中,使用局域密度近似(LDA)和广义梯度近似(GGA)完成了优化。基态优化结果表明,这两种化合物在GGA下能量最低。能带结构和态密度结果均表明这些化合物具有金属性质。从弹性值推导出了杨氏模量、体模量等力学性能。结果发现,与CsSbO相比,RbSbO具有更强的抗压性。根据泊松比(υ)、柯西压力(C-C)和普格比(B/G)标准,发现这两种材料均具有脆性。计算得出,RbSbO和CsSbO的熔点分别为2148 ± 300 K和1746 ± 300 K。在准谐德拜近似下,利用压力和温度变化计算了热力学参数。在0 K至900 K的温度范围内以及0 GPa至15 GPa的压力范围内,计算了体模量、晶胞体积、比热容和热膨胀的性质。