Martins C, Aichhorn M, Biermann S
Laboratoire de Chimie et Physique Quantiques, UMR 5626, Université Paul Sabatier, 118 route de Narbonne, 31400 Toulouse, France.
J Phys Condens Matter. 2017 Jul 5;29(26):263001. doi: 10.1088/1361-648X/aa648f. Epub 2017 Mar 6.
The interplay of spin-orbit coupling and Coulomb correlations has become a hot topic in condensed matter theory and is especially important in 4d and 5d transition metal oxides, like iridates or rhodates. Here, we review recent advances in dynamical mean-field theory (DMFT)-based electronic structure calculations for treating such compounds, introducing all necessary implementation details. We also discuss the evaluation of Hubbard interactions in spin-orbit materials. As an example, we perform DMFT calculations on insulating strontium iridate (SrIrO) and its 4d metallic counterpart, strontium rhodate (SrRhO). While a Mott-insulating state is obtained for SrIrO in its paramagnetic phase, the spectral properties and Fermi surfaces obtained for SrRhO show excellent agreement with available experimental data. Finally, we discuss the electronic structure of these two compounds by introducing the notion of effective spin-orbital degeneracy as the key quantity that determines the correlation strength. We stress that effective spin-orbital degeneracy introduces an additional axis into the conventional picture of a phase diagram based on filling and on the ratio of interactions to bandwidth, analogous to the degeneracy-controlled Mott transition in d perovskites.
自旋轨道耦合与库仑关联的相互作用已成为凝聚态物质理论中的一个热门话题,在4d和5d过渡金属氧化物(如铱酸盐或铑酸盐)中尤为重要。在此,我们回顾基于动态平均场理论(DMFT)的电子结构计算在处理此类化合物方面的最新进展,并介绍所有必要的实现细节。我们还讨论了自旋轨道材料中哈伯德相互作用的评估。作为一个例子,我们对绝缘的锶铱氧化物(SrIrO)及其4d金属对应物锶铑氧化物(SrRhO)进行了DMFT计算。虽然在顺磁相的SrIrO中获得了莫特绝缘态,但SrRhO的光谱特性和费米面与现有实验数据显示出极好的一致性。最后,我们通过引入有效自旋轨道简并的概念作为决定关联强度的关键量来讨论这两种化合物的电子结构。我们强调,有效自旋轨道简并在基于填充以及相互作用与带宽之比的传统相图中引入了一个额外的轴,类似于d钙钛矿中简并控制的莫特转变。