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Hubbard model on the honeycomb lattice: From static and dynamical mean-field theories to lattice quantum Monte Carlo simulations

机译:蜂窝晶格上的Hubbard模型:从静态和动态平均场理论到晶格量子蒙特卡洛模拟

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摘要

We study the one-band Hubbard model on the honeycomb lattice using a combination of quantum Monte Carlo (QMC) simulations and static as well as dynamical mean-field theory (DMFT). This model is known to show a quantum phase transition between a Dirac semimetal and the antiferromagnetic insulator. The aim of this paper is to provide a detailed comparison between these approaches by computing static properties, notably ground-state energy, single-particle gap, double occupancy, and staggered magnetization, as well as dynamical quantities such as the single-particle spectral function. At the static mean-field level, local moments cannot be generated without breaking the SU(2) spin symmetry. The DMFT approximation accounts for temporal fluctuations and thus captures both the evolution of the double occupancy and the resulting local moment formation in the paramagnetic phase. As a consequence, the DMFT approximation is found to be very accurate in the Dirac semimetallic phase where local moment formation is present and the spin correlation length small. However, in the vicinity of the fermion quantum critical point, the spin correlation length diverges and the spontaneous SU(2) symmetry breaking leads to low-lying Goldstone modes in the magnetically ordered phase. The impact of these spin fluctuations on the single-particle spectral function-waterfall features and narrow spin-polaron bands-is only visible in the lattice QMC approach.
机译:我们使用量子蒙特卡罗(QMC)模拟与静态以及动态平均场论(DMFT)的组合研究蜂窝网格上的单带Hubbard模型。已知该模型显示了狄拉克半金属和反铁磁绝缘体之间的量子相变。本文的目的是通过计算静态属性(尤其是基态能量,单粒子间隙,双重占据和交错磁化)以及动态量(如单粒子光谱函数)来提供这些方法之间的详细比较。 。在静态平均场水平上,如果不破坏SU(2)自旋对称性,就无法生成局部矩。 DMFT近似说明了时间上的波动,因此可以捕获双空间占用的演变以及顺磁相中形成的局部矩。结果,发现在狄拉克半金属相中存在局部矩形成且自旋相关长度较小的DMFT近似非常精确。但是,在费米子量子临界点附近,自旋相关长度发散,并且自发的SU(2)对称断裂导致磁有序相中的低洼Goldstone模态。这些自旋涨落对单粒子光谱函数的影响-瀑布特征和狭窄的自旋极化子带-仅在点阵QMC方法中可见。

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  • 来源
    《Physical review》 |2020年第12期|125103.1-125103.12|共12页
  • 作者单位

    Institut für Theoretische Physik und Astrophysik Universität Würzburg Am Hubland D-97074 Würzburg Germany;

    Department of Physics Kyoto University Kyoto 606-8502 Japan;

    Laboratoire de Physique Théorique et Modélisation CNRS UMR 8089 CY Cergy Paris Université F-95302 Cergy-Pontoise Cedex France University of Science and Technology of HaNoi 18 Hoang Quoc Viet Vietnam;

    Research Institute for Interdisciplinary Science Okayama University Okayama 700-8530 Japan;

    Laboratoire de Physique Théorique et Modélisation CNRS UMR 8089 CY Cergy Paris Université F-95302 Cergy-Pontoise Cedex France;

    Laboratoire de Physique Théorique et Modélisation CNRS UMR 8089 CY Cergy Paris Université F-95302 Cergy-Pontoise Cedex France Department of Physics Sari Branch Islamic Azad University Sari 48164-194 Iran;

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