论文标题
S-F在压力下固体质量结构中的S-F转变不存在
Non-existence of the s-f transition in structures of solid gadolinium at pressure
论文作者
论文摘要
长期以来,人们一直认为Gadolinium会发生高压相变,体积塌陷约5%。理论解释集中在电子从扩展的S-轨道转移到紧凑型F-轨道的想法。但是,实验测量无法检测到F-Electron的磁性特性的任何相关变化。在这里,我们通过表明没有明显的体积崩溃来解决这种差异,超出了高压相变的典型情况。我们使用一系列方法提出了高压下固体gadolinium的密度功能理论计算,并使用X射线衍射(XRD)重新审视实验情况。重现了涉及封闭平面的不同堆叠的标准灯笼压力转化序列:HCP至9R至DHCP至DHCP至FCC至D-FCC。所谓的“体积崩溃”的高压相被证明是封闭平面的不寻常的堆叠,具有FDDD对称性,密度变化小于2%。由于抗铁磁性,FCC(D-FCC)结构变形(D-FCC)结构被揭示出来。理论结果证明对F-电子的各种治疗方法非常强大。关键结果是没有XRD证据证明了gadolin的体积崩溃。标准DFT很好地描述了相变的顺序。不需要对F-电子的特殊处理或F-电子键合的证据。指出以前的光谱证据是,F-电子没有变化,我们得出的结论是,高压gadolium没有复杂的F-电子物理学,例如Mott-Hubbard,Kondo或Valence Transition。
Gadolinium has long been believed to undergo a high pressure phase transition with a volume collapse around 5%. Theoretical explanations have focused on the idea of electrons transferring from the extended s-orbital to the compact f-orbital. However, experimental measurement has been unable to detect any associated change in the magnetic properties of the f-electrons. Here we resolve this discrepancy by showing that there is no significant volume collapse, beyond what is typical in high pressure phase transformations. We present density functional theory calculations of solid gadolinium under high pressure using a range of methods, and revisit the experimental situation using X-ray diffraction (XRD). The standard lanthanide pressure-transformation sequence involving different stackings of close-packed planes: hcp to 9R to dhcp to fcc to d-fcc is reproduced. The so-called "volume collapsed" high-pressure phase is shown to be an unusual stacking of close-packed planes, with Fddd symmetry and a density change less than 2%. The distorted fcc (d-fcc) structure is revealed to arise as a consequence of antiferromagnetism. The theoretical results are shown to be remarkably robust to various treatments of the f-electrons. The key result is that there is no XRD evidence for volume collapse in Gadolinium. The sequence of phase transitions is well described by standard DFT. There is no need for special treatment of the f-electrons or evidence of f-electron bonding. Noting previous spectroscopic evidence is that there is no change in the f-electrons we conclude that high pressure Gadolinium has no complicated f-electron physics such as Mott-Hubbard, Kondo or valence transition.