Abstract

The appearance of nontrivial phases in Kitaev materials exposed to an external magnetic field has recently been a subject of intensive studies. Here, we elucidate the relation between the field-induced ground states of the classical and quantum spin models proposed for such materials, by using the infinite density matrix renormalization group (iDMRG) and the linear spin wave theory (LSWT). We consider the $K \Gamma \Gamma'$ model, where $\Gamma$ and $\Gamma'$ are off-diagonal spin exchanges on top of the dominant Kitaev interaction $K$. Focusing on the magnetic field along the $[111]$ direction, we explain the origin of the nematic paramagnet, which breaks the lattice-rotational symmetry and exists in an extended window of magnetic field, in the quantum model. This phenomenon can be understood as the effect of quantum order-by-disorder in the frustrated ferromagnet with a continuous manifold of degenerate ground states discovered in the corresponding classical model. We compute the dynamical spin structure factors using a matrix operator based time evolution and compare them with the predictions from LSWT. We, thus, provide predictions for future inelastic neutron scattering experiments on Kitaev materials in an external magnetic field along the $[111]$ direction. In particular, the nematic paramagnet exhibits a characteristic pseudo-Goldstone mode which results from the lifting of a continuous degeneracy via quantum fluctuations.

Highlights

  • There has been a surge of interest in Kitaev materials [1,2,3,4,5,6] due to the promise for the discovery of a Kitaev spin liquid [7]

  • We investigate the origin of the nematic paramagnet in the quantum K model and its relation to the classical ground states, employing the infinite density matrix renormalization group approach [34,35,36] and linear spin wave theory (LSWT)

  • We demonstrate that the K and K models in a magnetic field along the [111] direction support an nematic paramagnet (NP) phase, which is not magnetically ordered, but breaks the latticerotation symmetry while preserving translational symmetry

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Summary

INTRODUCTION

There has been a surge of interest in Kitaev materials [1,2,3,4,5,6] due to the promise for the discovery of a Kitaev spin liquid [7]. We find the KSL to be confined to a small corner near the Kitaev limit, while a large fraction of the phase diagram is occupied by either NP that spontaneously breaks the lattice-rotational symmetry or ZZ long-range magnetic order that further breaks translational symmetry. While there is no evidence within iDMRG for a long-range magnetically ordered phase at zero field for all the geometries (up to Lcirc = 12 sites) explored here, scenarios for the two-dimensional limit in which either.

Order parameter of the nematic paramagnet
Zero-field limit of the K model
DYNAMICS
DISCUSSION
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