Chiral liquid phase of simple quantum magnets
Zhentao Wang, Adrian E. Feiguin, Wei Zhu, Oleg A. Starykh, Andrey V., Chubukov, Cristian D. Batista

TL;DR
This paper uncovers a novel chiral liquid phase in a quantum magnet model, arising from magnon pairing and existing between paramagnetic and ordered phases, confirmed by analytical and numerical methods.
Contribution
It reveals a new intermediate chiral liquid phase in a spin-1 XXZ model, driven by magnon pairing, beyond mean-field predictions.
Findings
Identification of a chiral liquid phase with broken inversion symmetry
Magnon pairing leads to phase transition before single-magnon instability
Numerical DMRG confirms the analytical predictions
Abstract
We study a quantum phase transition between a quantum paramagnetic state and a magnetically ordered state for a spin XXZ Heisenberg antiferromagnet on a two-dimensional triangular lattice. The transition is induced by an easy plane single-ion anisotropy . At the mean-field level, the system undergoes a direct transition at a critical between a paramagnetic state at and an ordered state with broken U(1) symmetry at . We show that beyond mean field the phase diagram is very different and includes an intermediate, partially ordered chiral liquid phase. Specifically, we find that inside the paramagnetic phase the Ising () component of the Heisenberg exchange binds magnons into a two-particle bound state with zero total momentum and spin. This bound state condenses at , before single-particle excitations become unstable, and gives…
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