论文标题

在强和弱电子相互作用之间的交叉上建模非常规超导性

Modeling unconventional superconductivity at the crossover between strong and weak electronic interactions

论文作者

Christensen, Morten H., Wang, Xiaoyu, Schattner, Yoni, Berg, Erez, Fernandes, Rafael M.

论文摘要

高温超导率在许多不同的量子材料中出现,通常在相图的区域中电子动能与电子 - 电子库仑排斥相当。描述这种中间耦合制度已被证明是具有挑战性的,因为标准扰动方法是不可应用的。因此,找到可以使用精确方法解决的模型非常有趣。尽管通过数值模拟阐明了一个最小模型的性质(哈伯德模型)​​,但已经取得了重要的进步,但臭名昭著的费米子标志问题显着限制了可访问的参数空间。在这里,我们采用量子蒙特卡洛(QMC)方法来求解Hubbard模型的多频段版本,该版本不会遭受符号问题的困扰,并且仅存在排斥性的互动相互作用。与以前的无符号QMC研究相反,该模型没有先前存在的微调磁顺序,因此可以在相等的基础上处理超导,磁性和电荷自由度。我们发现,随着电子电子排斥的增加,在中间耦合方面出现了抗铁磁序的圆顶,并伴随着金属对绝缘体的交叉线。超导性仅在磁穹顶金属侧的抗铁磁量子相变附近。在抗铁磁量子相变,我们发现磁波动的动力学特征发生了变化,从金属侧的缓慢和过度阻尼到在绝缘侧的快速和繁殖。我们的发现为超导性,磁性和量子材料的电荷相关性之间的相互交织提供了新的启示。

High-temperature superconductivity emerges in a host of different quantum materials, often in a region of the phase diagram where the electronic kinetic energy is comparable in magnitude with the electron-electron Coulomb repulsion. Describing such an intermediate-coupling regime has proven challenging, as standard perturbative approaches are inapplicable. Hence, it is of enormous interest to find models that are amenable to be solved using exact methods. While important advances have been made in elucidating the properties of one such minimal model -- the Hubbard model -- via numerical simulations, the infamous fermionic sign-problem significantly limits the accessible parameter space. Here, we employ Quantum Monte Carlo (QMC) methods to solve a multi-band version of the Hubbard model that does not suffer from the sign-problem and in which only repulsive interband interactions are present. In contrast to previous sign-problem-free QMC studies, this model does not have pre-existing fine-tuned magnetic order, and thus treats superconducting, magnetic, and charge degrees of freedom on an equal footing. We find that, as the electron-electron repulsion increases, a dome of antiferromagnetic order emerges in the intermediate-coupling regime, accompanied by a metal-to-insulator crossover line. Superconductivity is found only near the antiferromagnetic quantum phase transition located on the metallic side of the magnetic dome. Across the antiferromagnetic quantum phase transition we find a change in the dynamical character of the magnetic fluctuations, from slow and overdamped in the metallic side to fast and propagating in the insulating side. Our findings shed new light on the intertwining between superconductivity, magnetism, and charge correlations in quantum materials.

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