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Orbital-selective Mott phase in multiorbital models for iron pnictides and chalcogenides

机译:用于铁癌和硫属元素化物的多学模型中的轨道选择性斑块

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There is increasing recognition that the multiorbital nature of the 3d electrons is important to the proper description of the electronic states in the normal state of the iron-based superconductors. Earlier studies of the pertinent multiorbital Hubbard models identified an orbital-selective Mott phase, which anchors the orbitalselective behavior seen in the overall phase diagram. An important characteristics of the models is that the orbitals are kinetically coupled, i.e., hybridized, to each other, which makes the orbital-selective Mott phase especially nontrivial. A U(1) slave-spin method was used to analyze the model with nonzero orbital-level splittings. Here we develop a Landau free-energy functional to shed further light on this issue. We put the microscopic analysis from the U(1) slave-spin approach in this perspective, and show that the intersite spin correlations are crucial to the renormalization of the bare hybridization amplitude towards zero and the concomitant realization of the orbital-selective Mott transition. Based on this insight, we discuss additional ways to study the orbital-selective Mott physics from a dynamical competition between the interorbital hybridization and collective spin correlations. Our results demonstrate the robustness of the orbital-selective Mott phase in the multiorbital models appropriate for the iron-based superconductors.
机译:越来越难以识别:3D电子的多部会性质对电子状态在铁基超导体的正常状态下的适当描述是重要的。早期对相关多学毂谱模型的研究鉴定了一种轨道选择性的Mott阶段,其锚固在整个相图中看到的轨道选择性行为。模型的一个重要特征是轨道是动力学偶联的,即彼此杂交,使其使轨道选择性的斑块尤其是非增长的。使用U(1)u(1)SLAVE-SPIN方法分析非零轨道水平分离器的模型。在这里,我们在此问题上开发了一个Landau自由能功能。在这种观点中,我们将微观分析从U(1)从旋转方法进行,并且表明错位旋转相关对裸杂交振幅的重整化至零的重整,并且伴随的轨道选择性的玻璃轨道选择性造型造型的转变。基于这一洞察力,我们讨论了从眶间杂交和集体旋转相关之间的动态竞争中研究了轨道选择性莫特物理学的额外方法。我们的结果表明,适用于铁基超导体的多际模型中的轨道选择性Mott相的鲁棒性。

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  • 来源
    《Physical Review. B, Condensed Matter 》 |2017年第12期| 125110.1-125110.10| 共10页
  • 作者

    Rong Yu; Qimiao Si;

  • 作者单位

    Department of Physics Renmin University of China Beijing 100872 China Department of Physics and Astronomy Shanghai Jiao Tong University Shanghai 200240 China and Collaborative Innovation Center of Advanced Microstructures Nanjing 210093 China;

    Department of Physics & Astronomy Rice University Houston Texas 77005 USA;

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