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Strong enhancement of magnetic susceptibility induced by spin-nematic fluctuations in an excitonic insulating system with spin-orbit coupling

机译:具有旋转轨道耦合的激发器绝缘系统中的旋转向量波动引起的磁化率强大提高磁化率

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摘要

Effects of the spin-orbit coupling (SOC) and magnetic field on excitonic insulating (EI) states are investigated. We introduce the two-orbital Hubbard model with the crystalline field splitting, which is a minimal model for discussing the exciton condensation in strongly correlated electron systems, and analyze its effective Hamiltonian in the strong correlation limit by using the mean-field theory. In the absence of the SOC and magnetic field, the ground state changes from the nonmagnetic band-insulating stale to the EI slate by increasing the Hund coupling. In an applied magnetic field, the magnetic moment appears in the EI state, which is continuously connected to the forced ferromagnetic state. On the other hand, in the presence of the SOC, they are separated by a phase boundary. We find that the magnetic susceptibility is strongly enhanced in the EI phase near the boundary with a small SOC. This peculiar behavior is attributed to the low-energy fluctuation of the spin nematicity inherent in the high-spin local state stabilized by the Hund coupling. The present study not only reveals the impact of the SOC for the EI slate but also sheds light on the role of quantum fluctuations of the spin nematicity for the EI state.
机译:研究了旋转轨道耦合(SOC)和磁场对激子绝缘(EI)状态的影响。我们用晶体分裂介绍了两种轨道隆巴德模型,这是讨论强烈相关电子系统中的激子凝结的最小模型,并通过使用平均场理论来分析其有效的汉密尔顿人。在不存在SOC和磁场的情况下,通过增加HUND耦合来从非磁带绝缘陈述到EI板岩的变化。在施加的磁场中,磁矩出现在EI状态下,其连续连接到强制的铁磁状态。另一方面,在SOC的存在中,它们被相位边界分开。我们发现磁化率在与小SoC的边界附近的EI相位中强烈增强。这种特殊的行为归因于由HUND耦合稳定的高自旋局部状态中固有的自旋向量的低能量波动。本研究不仅揭示了SOC对于EI Slate的影响,而且还揭示了ZEI态的旋转向量对EI状态的量子波动的作用。

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  • 来源
    《Physical review》 |2020年第4期|045143.1-045143.9|共9页
  • 作者单位

    Department of Physics Yokohama National University Hodogaya Yokohama 240-8501 Japan;

    Waseda Institute for Advanced Study Waseda University Tokyo 169-8050 Japan;

    Department of Physics Tohoku University Sendai 980-8578 Japan;

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