论文标题

单斜畸变的起源及其对KO $ _2 $中电子属性的影响

Origin of monoclinic distortion and its impact on the electronic properties in KO$_2$

论文作者

Sikora, Olga, Gotfryd, Dorota, Ptok, Andrzej, Sternik, Małgorzata, Wohlfeld, Krzysztof, Oleś, Andrzej M., Piekarz, Przemysław

论文摘要

我们使用密度功能理论和晶格动力学计算来研究超氧化钾KO $ _2 $的特性,其中自旋,轨道和晶格自由度是相互关联的,并确定低温相。在计算高温四方$ i4/mmm $结构中的声子分散关系之后,我们确定了一种软的声子模式,导致单斜$ C2/c $对称性,并优化了该模式产生的晶体几何形状。因此,我们揭示了结构过渡的替代特征,该特征与四方和单斜相之间的群 - 组关系。我们将KO $ _2 $的电子结构与四方和单斜相期的抗磁性自旋顺序进行比较。我们强调,对电子结构的现实处理需要包括本地库仑相互作用$ u $在o $^-_ 2 $离子的价轨道中。 “ Hubbard'$ U $的存在导致在没有轨道秩序但较弱的自旋轨道相互作用的四方结构中的费米能量处的差距开口。我们指出,当轨道顺序以$ u $为$ u $的计算中启动时,也可以在四方阶段的差距开口。最后,我们表明,局部库仑相互作用和有限的晶格失真(通过Jahn-Teller效应一起导致轨道秩序)负责单斜结构中的绝缘间隙增强。

We use the density functional theory and lattice dynamics calculations to investigate the properties of potassium superoxide KO$_2$ in which spin, orbital, and lattice degrees of freedom are interrelated and determine the low-temperature phase. After calculating phonon dispersion relations in the high-temperature tetragonal $I4/mmm$ structure, we identify a soft phonon mode leading to the monoclinic $C2/c$ symmetry and optimize the crystal geometry resulting from this mode. Thus we reveal a displacive character of the structural transition with the group-subgroup relation between the tetragonal and monoclinic phases. We compare the electronic structure of KO$_2$ with antiferromagnetic spin order in the tetragonal and monoclinic phases. We emphasize that realistic treatment of the electronic structure requires including the local Coulomb interaction $U$ in the valence orbitals of the O$^-_2$ ions. The presence of the `Hubbard' $U$ leads to the gap opening at the Fermi energy in the tetragonal structure without orbital order but with weak spin-orbit interaction. We remark that the gap opening in the tetragonal phase could also be obtained when the orbital order is initiated in the calculations with a realistic value of $U$. Finally, we show that the local Coulomb interactions and the finite lattice distortion, which together lead to the orbital order via the Jahn-Teller effect, are responsible for the enhanced insulating gap in the monoclinic structure.

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