paper

Theory of Dirac spin liquids on spin- triangular lattice: possible application to -CrOOH(D)

arXiv:2012.09809

Abstract

Triangular lattice quantum antiferromagnet has recently emerged to be a promising playground for realizing Dirac spin liquids (DSLs) -- a class of highly entangled quantum phases hosting emergent gauge fields and gapless Dirac fermions. While previous theories and experiments focused mainly on spin systems, more recently signals of a DSL were detected in an system -CrOOH(D). In this work we develop a theory of DSLs on triangular lattice with spin- moments. We argue that in the most natural scenario, a spin- system realizes a DSL, described at low energy by gapless Dirac fermions coupled with an emergent gauge field (also known as QCD). An appealing feature of this scenario is that at sufficiently large , the QCD becomes intrinsically unstable toward spontaneous symmetry breaking and confinement. The confined phase is simply the coplanar magnetic order, which agrees with semiclassical (large-) results on simple Heisenberg-like models. Other scenarios are nevertheless possible, especially at small when quantum fluctuations are strong. For , we argue that a DSL is also theoretically possible and phenomenologically compatible with existing measurements. One way to distinguish the DSL from the DSL is to break time-reversal symmetry, for example by adding a spin chirality term in numerical simulations: the DSL becomes the standard Kalmeyer-Laughlin chiral spin liquid with semion/anti-semion excitation; the DSL, in contrast, becomes a non-abelian chiral spin liquid described by the topological order, with Fibonacci-like anyons.

8 pages

Theory of Dirac spin liquids on spin-$S$ triangular lattice: possible application to $α$-CrOOH(D) · wovepaper