$\mathbb{Z}_2$ gauge theory for valence bond solids on the kagome lattice
Kyusung Hwang, Yejin Huh, and Yong Baek Kim

TL;DR
This paper develops an effective ${Z}_2$ gauge theory to describe various phases in spin-1/2 kagome antiferromagnets, including spin liquids and valence bond solids, and explores effects of lattice anisotropy.
Contribution
It generalizes a recent ${Z}_2$ gauge theory to include anisotropy and investigates the stability of different valence bond solid phases on the kagome lattice.
Findings
12-site VBS is stable under anisotropy
36-site VBS undergoes dimer melting with anisotropy
6-site VBS is not supported in this approach
Abstract
We present an effective gauge theory that captures various competing phases in spin-1/2 kagome lattice antiferromagnets: the topological spin liquid (SL) phase, and the 12-site and 36-site valence bond solid (VBS) phases. Our effective theory is a generalization of the recent gauge theory proposed for SL phases by Wan and Tchernyshyov. In particular, we investigate possible VBS phases that arise from vison condensations in the SL. In addition to the 12-site and 36-site VBS phases, there exists 6-site VBS that is closely related to the symmetry-breaking valence bond modulation patterns observed in the recent density matrix renormalization group simulations. We find that our results have remarkable consistency with a previous study using a differnt gauge theory. Motivated by the lattice geometry in the recently reported vanadium…
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