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Pressure-induced phase-transition sequence in CoF2: An experimental and first-principles study on the crystal, vibrational, and electronic properties

机译:CoF2中压力诱导的相变序列:关于晶体,振动和电子性质的实验和第一性原理研究

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摘要

We report a complete structural study of CoF2 under pressure. Its crystal structure and vibrational and electronic properties have been studied both theoretically and experimentally using first-principles density functional theory (DFT) methods, x-ray diffraction, x-ray absorption at Co K-edge experiments, Raman spectroscopy, and optical absorption in the 0–80 GPa range. We have determined the structural phase-transition sequence in CoF2 and corresponding transition pressures. The results are similar to other transition-metal difluorides such as FeF2 but different to ZnF2 and MgF2, despite that the Co2+ size (ionic radius) is similar to Zn2+ and Mg2+. We found that the complete phase-transition sequence is tetragonal rutile (P42/mnm) → CaCl2 type (orthorhombic Pnnm) → distorted PdF2 (orthorhombic Pbca)+PdF2 (cubic Pa3¯) in coexistence → fluorite (cubic Fm3¯m) → cotunnite (orthorhombic Pnma). It was observed that the structural phase transition to the fluorite at 15 GPa involves a drastic change of coordination from sixfold octahedral to eightfold cubic with important modifications in the vibrational and electronic properties. We show that the stabilization of this high-pressure cubic phase is possible under nonhydrostatic conditions since ideal hydrostaticity would stabilize the distorted-fluorite structure (tetragonal I4/mmm) instead. Although the first rutile → CaCl2-type second-order phase transition is subtle by Raman spectroscopy, it was possible to define it through the broadening of the Eg Raman mode which is split in the CaCl2-type phase. First-principles DFT calculations are in fair agreement with the experimental Raman mode frequencies, thus providing an accurate description for all vibrational modes and elastic properties of CoF2 as a function of pressure.
机译:我们报告在压力下对CoF2的完整结构研究。使用第一原理密度泛函理论(DFT)方法,x射线衍射,Co K边缘实验中的x射线吸收,拉曼光谱和光学吸收来对它的晶体结构以及振动和电子性质进行了理论和实验研究。 0–80 GPa范围。我们已经确定了CoF2中的结构相变序列和相应的转变压力。结果与其他过渡金属二氟化物(例如FeF2)相似,但与ZnF2和MgF2不同,尽管Co2 +尺寸(离子半径)与Zn2 +和Mg2 +相似。我们发现完整的相变顺序是四方金红石(P42 / mnm)→CaCl2型(斜方Pnnm)→扭曲的PdF2(斜方Pbca)+ PdF2(立方Pa3)共存→萤石(立方Fm3¯m)→共晶(斜方体Pnma)。观察到,在15 GPa时,结构相转变为萤石涉及从六重八面体到八重立方的剧烈配位变化,并且在振动和电子特性方面有重要的改变。我们证明,在非静水条件下,这种高压立方相的稳定是可能的,因为理想的静水性能会稳定变形的萤石结构(四方晶系I4 / mmm)。尽管第一金红石→CaCl2型二阶相变在拉曼光谱中是微妙的,但可以通过扩大在CaCl2型相中分裂的Eg拉曼模式来定义它。第一性原理DFT计算与实验拉曼模式频率完全吻合,因此可以准确描述CoF2的所有振动模式和弹性特性随压力的变化。

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