Quantum spin liquids in the absence of spin-rotation symmetry: application to Herbertsmithite
Tyler Dodds, Subhro Bhattacharjee, Yong Baek Kim

TL;DR
This study explores quantum spin-liquid phases in Herbertsmithite considering realistic symmetry-breaking interactions, revealing diffuse spin structure factors consistent with experimental observations and identifying potential gapped states.
Contribution
It systematically classifies QSLs under symmetry-breaking perturbations using PSG analysis and connects theoretical results with experimental neutron scattering data.
Findings
Diffuse spin structure factors match experimental neutron scattering in Herbertsmithite.
Certain Z2 states exhibit minimal dispersive features, resembling experimental observations.
Symmetry-breaking perturbations enhance diffuse scattering and influence the spin gap.
Abstract
It has been suggested that the nearest-neighbour (NN) antiferromagnetic Heisenberg (HAF) model on the Kagome lattice may be a good starting point to understand the quantum spin-liquid (QSL) behaviour discovered in Herbertsmithite. We investigate possible QSL phases in the presence of experimentally relevant spin-rotation symmetry-breaking perturbations such as Dzyaloshinskii-Moriya and Ising interactions, as well as second-neighbour antiferromagnetic Heisenberg interactions. We use the projective symmetry group analysis within the slave-fermion framework of QSL phases and systematically classify possible QSLs in the presence of these perturbations. The dynamical spin-structure factor for relevant QSLs is computed and their effects are studied. Our calculations reveal dispersive features in the spin structure factor embedded in a generally diffuse background due to the existence of…
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