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Extended dynamical mean field theory combined with the two-particle irreducible functional renormalization-group approach as a tool to study strongly correlated systems

机译:扩展的动态平均场理论与双粒子不可缩续的功能重整化 - 群体方法相结合,作为研究强相关系统的工具

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We propose an approach describing correlated electronic systems within the two-particle irreducible functional renormalization-group (2PI-fRG) approach, which uses initial self-energy and the two-particle irreducible vertices, obtained from (extended) dynamical mean-field theory [E(DMFT)]. Using the 2PI-fRG approach allows us to treat both local and nonlocal interactions. In the case of purely local interaction the corresponding equations have similar (although not identical) structure to the earlier developed DMFT+fRG (DMF2RG) approach. In a simplest truncation, neglecting scale dependence of the two-particle irreducible vertices, we reproduce the results for the two-particle vertices/susceptibilities in the ladder approximation of the dual-boson (DB) or the dynamic vertex approximation approach; in more sophisticated truncations the method allows us to consider nonlocal corrections to the self-energy as well as the interplay of charge and spin correlations. The proposed scheme is tested on the two-dimensional standard and extended U-V half-filled Hubbard models. For the standard Hubbard model we obtain nonlocal self-energy, which is in agreement with numerical studies; for the extended Hubbard model we find the boundary of charge instability, which agrees well with the results of the DB approach. We also ascertain that the effect of spin correlations on electron interaction in the charge channel, not considered previously in the DB approach, only slightly reduces critical next-nearest-neighbor interaction of charge instability of the extended Hubbard model at the considered finite low temperature, yielding better agreement with dynamic cluster approximation. The considered method is rather general and can be applied to study various phenomena in strongly correlated electronic systems.
机译:我们提出了一种方法,该方法描述了双粒子不可缩续的官能重整化 - 组(2PI-FRG)方法内的相关电子系统,其使用初始自能和双粒子不可缩续的顶点,从(延长)动态平均场理论中获得[ E(DMFT)]。使用2PI-FRG方法允许我们治疗本地和非本地相互作用。在纯粹局部交互的情况下,相应的等式具有类似的(虽然不是相同的)结构,以前开发了DMFT + FRG(DMF2RG)方法。在最简单的截断中,忽略双粒子不可缩短顶点的尺度依赖性,我们再现双粒子顶点/敏感性在双玻色子(DB)或动态顶点近似方法中的两个粒子顶点/敏感性的结果;在更复杂的截断中,该方法允许我们考虑对自我能量的非识别校正以及充电和旋转相关的相互作用。所提出的方案是在二维标准和扩展U-V半填充的Hubbard模型上进行测试。对于标准的Hubbard模型,我们获得非局部自我能量,这与数值研究一致;对于扩展的Hubbard模型,我们发现电荷不稳定的边界,这与DB方法的结果很好。我们还确定旋转相关性对电荷通道中的电子相互作用的影响,之前不考虑在DB方法中,仅略微减少了延伸的有限低温下扩展船舶模型的电荷不稳定性的临界下一邻相互作用,与动态簇近似产生更好的协议。考虑方法是相当一般的,可以应用于在强相关的电子系统中研究各种现象。

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