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Exactly solvable spin-1/2 XYZ models with highly degenerate partially ordered ground states

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Benton,  Owen
Max Planck Institute for the Physics of Complex Systems, Max Planck Society;

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Citation

Palle, G., & Benton, O. (2021). Exactly solvable spin-1/2 XYZ models with highly degenerate partially ordered ground states. Physical Review B, 103(21): 214428. doi:10.1103/PhysRevB.103.214428.


Cite as: https://hdl.handle.net/21.11116/0000-0008-F6B8-3
Abstract
Exactly solvable models play a special role in condensed matter physics, serving as secure theoretical starting points for investigation of new phenomena. Changlani et al. [Phys. Rev. Lett. 120, 117202 (2018)] have discovered a limit of the XXZ model for S = 1/2 spins on the kagome lattice, which is not only exactly solvable, but features a huge degeneracy of exact ground states corresponding to solutions of a three-coloring problem. This special point of the model was proposed as a parent for multiple phases in the wider phase diagram, including quantum spin liquids. Here, we show that the construction of Changlani et al. can be extended to more general forms of anisotropic exchange interaction, finding a line of parameter space in an XYZ model which maintains both the macroscopic degeneracy and the three-coloring structure of solutions. We show that the ground states along this line are partially ordered, in the sense that infinite-range correlations of some spin components coexist with a macroscopic number of undetermined degrees of freedom. We therefore propose the exactly solvable limit of the XYZ model on corner-sharing triangle-based lattices as a tractable starting point for discovery of quantum spin systems which mix ordered and spin-liquid-like properties.