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First-principles calculations of the phase stability of TiO2 - art. no. 224112

机译:TiO2相稳定性的第一性原理计算-艺术没有。 224112

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First-principles calculations of the crystal structures, bulk moduli, and relative stabilities of seven known and hypothetical TiO2 polymorphs (anatase, rutile, columbite, baddeleyite, cotunnite, pyrite, and fluorite structures) have been carried out with the all-electron linear combination of atomic orbitals (LCAO) and pseudopotential planewave (PW) methods. The anatase versus rutile relative phase stability at 0 K and zero pressure has been investigated using high-quality basis sets and carefully controlled computational parameters. From the optimal crystal structures obtained with the Hartree-Fock theory at various pressures, the bulk modulus and phase transition pressures of various high-pressure polymorphs have been derived at the athermal limit. In most cases, the calculated unit cell data agree to within 2% of the corresponding experimental determination. Complete predicted structural data (unit cell constants and fractional atomic coordinates) are presented for the baddeleyite and pyrite forms. The calculated bulk moduli are within 10% of the most reliable experimental results. Both the all-electron LCAO and pseudopotential PW methods predict anatase to be more stable than rutile at 0 K and ambient pressure. The computed anatase-columbite, rutile-columbite, columbite-baddeleyite, and baddeleyite-cotunnite phase transitions appear in the same order as observed in experiments, and the transition pressures agree semiquantitatively with those measured. The pyrite and fluorite structures are predicted to be less stable than other polymorphs at pressures below 70 GPa in agreement with experiments. Finally, the elastic properties, compressibilities and phase transformations of the various polymorphs are discussed in terms of simple models based on the behavior of the constituent Ti-O polyhedra under compression. [References: 87]
机译:利用全电子线性组合对7种已知的和假设的TiO2多晶型物(锐钛矿,金红石,co矿,坏枝铝石,co石,黄铁矿和萤石结构)进行了晶体结构,体积模量和相对稳定性的第一性原理计算。原子轨道(LCAO)和伪势平面波(PW)方法的研究。使用高质量基集和精心控制的计算参数研究了0 K和零压力下锐钛矿相对金红石的相对相稳定性。从使用Hartree-Fock理论在各种压力下获得的最佳晶体结构,可以得出在无热极限下各种高压多晶型物的体积模量和相变压力。在大多数情况下,计算得出的晶胞数据与相应的实验确定值相差2%以内。给出了针对铅锌矿和黄铁矿形式的完整预测结构数据(晶胞常数和原子分数分数)。计算的体积模量在最可靠的实验结果的10%以内。全电子LCAO和伪电势PW方法都预测在0 K和环境压力下锐钛矿比金红石更稳定。计算所得的锐钛矿-lum石,金红石-lum石,co石-baddeleyite和baddeleyite-tuntunite相变的出现顺序与实验中观察到的顺序相同,并且其转变压力与所测得的转变压力在半定量上一致。与实验相一致,在低于70 GPa的压力下,黄铁矿和萤石结构的稳定性预计低于其他多晶型物。最后,基于组成Ti-O多面体在压缩状态下的行为,通过简单的模型讨论了各种多晶型物的弹性,可压缩性和相变。 [参考:87]

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