4.6 Article

Spin Berry curvature of the Haldane model

Journal

PHYSICAL REVIEW B
Volume 106, Issue 23, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.106.235423

Keywords

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Funding

  1. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [170620586, 449872909, SFB 925, FOR 5249]

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The geometrical Berry phase feedback in an electron system has a significant impact on the slow dynamics of classical degrees of freedom, which is determined by the Berry curvature. In this study, we investigate the local magnetic moments in a Chern insulator, modeled as classical spins, and explore their coupling to the Haldane model. We find an anomalous geometrical spin torque derived from the spin Berry curvature, which is non-zero due to the broken time-reversal symmetry in the condensed matter system. By developing a general theory and calculating the spin Berry curvature, we analyze its spatial structure, symmetry properties, distance dependence, as well as other characteristics. Moreover, we demonstrate that the magnitude of the spin Berry curvature is influenced by the insulating gap size, the system size, and the strength of local exchange coupling.
The feedback of the geometrical Berry phase, accumulated in an electron system, on the slow dynamics of classical degrees of freedom is governed by the Berry curvature. Here, we study local magnetic moments, modeled as classical spins, which are locally exchange coupled to the (spinful) Haldane model for a Chern insulator. In the emergent equations of motion for the slow classical-spin dynamics there is a an additional anomalous geometrical spin torque, which originates from the corresponding spin Berry curvature. Due to the explicitly broken time-reversal symmetry, this is nonzero but usually small in a condensed-matter system. We develop the general theory and compute the spin Berry curvature, mainly in the limit of weak exchange coupling, in various parameter regimes of the Haldane model, particularly close to a topological phase transition and for spins coupled to sites at the zigzag edge of the model in a ribbon geometry. The spatial structure of the spin Berry curvature tensor, its symmetry properties, the distance dependence of its nonlocal elements, and further properties are discussed in detail. For the case of two classical spins, the effect of the geometrical spin torque leads to an anomalous non-Hamiltonian spin dynamics. It is demonstrated that the magnitude of the spin Berry curvature is decisively controlled by the size of the insulating gap, the system size, and the strength of local exchange coupling.

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