Anyon dynamics in field-driven phases of the anisotropic Kitaev model
Shi Feng, Adhip Agarwala, Subhro Bhattacharjee, Nandini Trivedi

TL;DR
This paper investigates the phase diagram and dynamical signatures of anyonic excitations in the anisotropic Kitaev model under external magnetic fields, revealing distinct experimental signatures of fractionalization in quantum spin liquids.
Contribution
It introduces a detailed analysis of the field-driven phases of the anisotropic Kitaev model, identifying dynamical signatures of anyonic excitations and proposing experimental detection methods.
Findings
Identification of a gapped $Z_2$ Toric code phase at high anisotropy
Discovery of dispersing $ extit{epsilon}$ fermions in a magnetic field
Proposal of inelastic scattering signatures as evidence of fractionalization
Abstract
The Kitaev model on a honeycomb lattice with bond-dependent Ising interactions offers an exactly solvable model of a quantum spin liquid (QSL) with gapped fluxes and gapless linearly dispersing Majorana fermions in the isotropic limit (). We explore the phase diagram along two axes, an external magnetic field, , applied out-of-plane of the honeycomb, and anisotropic interactions, larger than the other two. For and , the matter Majorana fermions have the largest gap, and the system is described by a gapped Toric code in which the fluxes form the low energy bosonic Ising electric (e) and magnetic (m) charges along with their fermionic bound state . In this regime, we find that a small out-of-plane magnetic field creates fermions that disperse in fixed one-dimensional directions before the transition…
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Taxonomy
TopicsQuantum Chromodynamics and Particle Interactions · Physics of Superconductivity and Magnetism · Advanced Condensed Matter Physics
