论文标题

二维伪旋转1/2莫特绝缘子的限制SR $ _2 $ IRO $ _4 $

Constraints on the two-dimensional pseudo-spin 1/2 Mott insulator description of Sr$_2$IrO$_4$

论文作者

Zwartsenberg, Berend, Day, Ryan P., Razzoli, Elia, Michiardi, Matteo, Na, Mengxing, Zhang, Guoren, Denlinger, Jonathan D., Vobornik, Ivana, Bigi, Chiara, Kim, Bumjoon, Elfimov, Ilya S., Pavarini, Eva, Damascelli, Andrea

论文摘要

Sr $ _ {2} $ iro $ _ {4} $经常通过一种简单的单频伪旋转1/2型型号来描述,但要在平方晶格上进行电子 - 电子相互作用,从而促进与库酸酯超导体的类比,从而通过类似的模型很好地描述了与类似型号进行很好描述。在这项工作中,我们认为 - 基于对低能电子结构的详细研究,循环极化自旋和角度分辨光发射光谱与动态平均场理论计算相结合 - 伪旋转1/2模型无法捕获系统的完全复杂性。相反,我们证明了一个现实的多波段哈伯德汉密尔顿人,这是对完整相关的$ t_ {2g} $歧管的解释,详细说明了自旋轨道纠缠与电子 - 电子相互作用之间的相互作用,并与实验产生定量协议。我们的分析表明,$ j_ {3/2} $状态占低能光谱重量的很大一部分,即根据$ j $分辨的频谱功能在$ 0 $ 0 $至$ -1.64 $ -1.64 $ $ $ EV ENG ENVENCE范围内确定的约74%。我们工作中的结果不仅与基于虹膜的材料相关,而且更普遍地与对具有紧密间隔能量尺度的多轨材料进行研究。

Sr$_{2}$IrO$_{4}$ has often been described via a simple, one-band pseudo-spin 1/2 model, subject to electron-electron interactions, on a square lattice, fostering analogies with cuprate superconductors, believed to be well described by a similar model. In this work we argue - based on a detailed study of the low-energy electronic structure by circularly polarized spin and angle-resolved photoemission spectroscopy combined with dynamical mean-field theory calculations - that a pseudo-spin 1/2 model fails to capture the full complexity of the system. We show instead that a realistic multi-band Hubbard Hamiltonian, accounting for the full correlated $t_{2g}$ manifold, provides a detailed description of the interplay between spin-orbital entanglement and electron-electron interactions, and yields quantitative agreement with experiments. Our analysis establishes that the $j_{3/2}$ states make up a substantial percentage of the low energy spectral weight, i.e. approximately 74% as determined from the integration of the $j$-resolved spectral function in the $0$ to $-1.64$ eV energy range. The results in our work are not only of relevance to iridium based materials, but more generally to the study of multi-orbital materials with closely spaced energy scales.

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