Physical Review B · 2015 · 158 citations · 59 references
The authors develop a theory of dynamical spin response for the Kitaev honeycomb model, deriving exact structure factor results for both gapped and gapless, Abelian and non‑Abelian quantum spin‑liquid phases. They employ advanced computational methods to obtain these exact structure factor results for the Kitaev model. The resulting structure factor reveals spin‑fractionalization into Majorana fermions and Z2 gauge fluxes, exhibiting a broad continuum plus sharp δ‑function peaks from flux‑only and fermion‑flux bound states, with distinct signatures between Abelian and non‑Abelian phases and bound composites appearing only in the non‑Abelian case.
We present the theory of dynamical spin-response for the Kitaev honeycomb model, obtaining exact results for the structure factor (SF) in gapped and gapless, Abelian and non-Abelian quantum spin-liquid (QSL) phases. We also describe the advances in methodology necessary to compute these results. The structure factor shows signatures of spin-fractionalization into emergent quasiparticles -- Majorana fermions and fluxes of $Z_2$ gauge field. In addition to a broad continuum from spin-fractionalization, we find sharp ($\delta$-function) features in the response. These arise in two distinct ways: from excited states containing only (static) fluxes and no (mobile) fermions; and from excited states in which fermions are bound to fluxes. The SF is markedly different in Abelian and non-Abelian QSLs, and bound fermion-flux composites appear only in the non-Abelian phase.
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