Ahmed Ahmed Wisam Ayad, Özdemir Evren Görkem, Aliabad H A Rahnamaye
Department of Physics, Faculty of Science, Gazi University, 06560, Teknikokullar, Ankara, Türkiye.
Department of Physics, Graduate School of Natural and Applied Sciences, Gazi University, Teknikokullar, 06560, Ankara, Türkiye.
J Mol Model. 2024 Aug 12;30(9):305. doi: 10.1007/s00894-024-06107-8.
LiVMgO, LiNbMgO, and LiTaMgO double perovskite compounds were energetically the most stable in the FM phase. The lattice constants were 7.63 Å, 7.94 Å, and 7.95 Å, and the Curie temperatures were 910.451 K, 930.739 K, and 1258.821 K, respectively. The wide bandgap semiconductor characters were provided in the GGA-PBE methods as 2.139 eV, 4.209 eV, and 5.007 eV, respectively. This wide band gap semiconductor state in the majority carriers and the metallic state in the minority states made these double perovskites true half-metallic ferromagnetics. The bulk modulus obtained in the ground state calculations and the values obtained from thermodynamic calculations were relatively close. Debye temperatures in the initial state conditions were 747 K, 685.13 K, and 587.77 K, respectively. The total magnetic moment values were calculated as 3.00 µ/f.u. The most significant contribution to this value came from oxygen atoms.
The theoretical calculations of LiVMgO, LiNbMgO, and LiTaMgO double perovskite alloys were performed using the WIEN2k program developed by Blaha et al. The electronic calculations were made with GGA-PBE, GGA + mBJ, and GGA + U approximations in the space number 225 and the Fm-3 m symmetry group. The thermodynamic calculations were performed using Gibbs2. In thermodynamic calculations, temperature increases were determined as 100 K and temperature values were increased from 0 to 1200 K.
LiVMgO、LiNbMgO和LiTaMgO双钙钛矿化合物在铁磁相能量上最稳定。晶格常数分别为7.63 Å、7.94 Å和7.95 Å,居里温度分别为910.451 K、930.739 K和1258.821 K。在GGA - PBE方法中,宽带隙半导体特性分别为2.139 eV、4.209 eV和5.007 eV。多数载流子中的这种宽带隙半导体状态和少数载流子中的金属状态使这些双钙钛矿成为真正的半金属铁磁体。基态计算中获得的体模量与热力学计算中获得的值相对接近。初始状态条件下的德拜温度分别为747 K、685.13 K和587.77 K。总磁矩值计算为3.00 µ/f.u.,对该值贡献最大的是氧原子。
使用Blaha等人开发的WIEN2k程序对LiVMgO、LiNbMgO和LiTaMgO双钙钛矿合金进行理论计算。电子计算在空间群225和Fm - 3 m对称群中采用GGA - PBE、GGA + mBJ和GGA + U近似进行。热力学计算使用Gibbs2进行。在热力学计算中,温度增量确定为100 K,温度值从0增加到1200 K。