Hao Xianfeng, Xu Yuanhui, Lv Minfeng, Zhou Defeng, Wu Zhijian, Meng Jian
Key Laboratory of Rare Earth Chemistry and Physics, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, P.R. China.
Inorg Chem. 2008 Jun 2;47(11):4734-9. doi: 10.1021/ic800060c. Epub 2008 Apr 15.
First principles calculations using the augmented plane wave plus local orbitals method, as implemented in the WIEN2k code, have been used to investigate the electronic and magnetic properties of YBaFe2O5, especially as regards the charge-orbital ordering. Although the total 3d charge disproportion is rather small, an orbital order parameter defined as the difference between t2g orbital occupations of Fe2+ and Fe3+ cations is large (0.73) and gives unambiguous evidence for charge and orbital ordering. Strong hybridization between O2p and Fe e g states results in the nearly complete loss of the separation between the total charges at the Fe2+ and Fe3+ atoms. Furthermore, the relationship between the orbital ordering and charge ordering is also discussed. The dxz orbital ordering is responsible for the stability of the G-type antiferromagnetic spin ordering and the charge ordering pattern.
使用WIEN2k代码中实现的增强平面波加局域轨道方法进行的第一性原理计算,已用于研究YBaFe2O5的电子和磁性,特别是关于电荷-轨道有序性。尽管总的3d电荷不均相当小,但定义为Fe2+和Fe3+阳离子的t2g轨道占据差异的轨道序参数很大(0.73),并为电荷和轨道有序性提供了明确的证据。O2p和Fe eg态之间的强杂化导致Fe2+和Fe3+原子处总电荷之间的分离几乎完全消失。此外,还讨论了轨道有序性与电荷有序性之间的关系。dxz轨道有序性对G型反铁磁自旋有序性和电荷有序模式的稳定性负责。