论文标题

量子磁性磁性磁性

Quantum Magnetism in Wannier-Obstructed Mott Insulators

论文作者

Huang, Xiao-Yang, Wang, Taige, Liu, Shang, Hu, Hong-Ye, You, Yi-Zhuang

论文摘要

我们开发了一种强烈的耦合方法,用于在莫特绝缘子中用于阻塞条带的量子磁力。尽管缺乏阻尼轨道,但电子仍然可以单独占据一组指数定位但非正交轨道,以最大程度地减少排斥相互作用的能量。我们开发了一种系统的方法,可以使用示意图方法从电子哈密顿量建立有效的自旋模型。 Mott基础的非正交性产生了超出Hartree-Fock和Superexchange术语以外的自旋交换(或排列)相互作用的多个新渠道。我们将这种方法应用于kagome晶格模型的相互作用电子中的相互作用障碍物(包括Chern带和脆弱的拓扑带)。由于轨道的非正交性(由最近的邻居轨道重叠$ g $)进行了参数,因此该型号表现出稳定的铁磁学,直至有限的带宽$ w \ sim u g $,其中$ u $是交互强度。这为实验观察到的强大的铁磁障碍物的障碍物阻塞带来了解释。通过我们的方法构建的有效自旋模型还为遇到量子磁力障碍的可能性开辟了可能性的可能性。

We develop a strong coupling approach towards quantum magnetism in Mott insulators for Wannier obstructed bands. Despite the lack of Wannier orbitals, electrons can still singly occupy a set of exponentially-localized but nonorthogonal orbitals to minimize the repulsive interaction energy. We develop a systematic method to establish an effective spin model from the electron Hamiltonian using a diagrammatic approach. The nonorthogonality of the Mott basis gives rise to multiple new channels of spin-exchange (or permutation) interactions beyond Hartree-Fock and superexchange terms. We apply this approach to a Kagome lattice model of interacting electrons in Wannier obstructed bands (including both Chern bands and fragile topological bands). Due to the orbital nonorthogonality, as parameterized by the nearest neighbor orbital overlap $g$, this model exhibits stable ferromagnetism up to a finite bandwidth $W\sim U g$, where $U$ is the interaction strength. This provides an explanation for the experimentally observed robust ferromagnetism in Wannier obstructed bands. The effective spin model constructed through our approach also opens up the possibility for frustrated quantum magnetism around the ferromagnet-antiferromagnet crossover in Wannier obstructed bands.

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