Ground States of Spin-1/2 Triangular Antiferromagnets in a Magnetic Field
Ru Chen, Hyejin Ju, Hong-Chen Jiang, Oleg A. Starykh, Leon Balents

TL;DR
This study maps the complex quantum phase diagram of a spin-1/2 triangular antiferromagnet model under magnetic fields, revealing novel quantum phases, incommensurate states, and a magnetization plateau, with implications for 2D systems.
Contribution
It provides the first comprehensive phase diagram of the anisotropic spin-1/2 triangular spin tube, highlighting quantum effects and novel phases absent in classical models.
Findings
Discovery of a dominant spin density wave phase with incommensurate collinear correlations.
Identification of a magnetization plateau at 1/3 saturation with a gap to excitations.
Observation of a low-field dimerized phase unique to the 1D nature of the model.
Abstract
We use a combination of density matrix renormalization group calculations and analytical approaches to study a simplified model for a spatially anisotropic spin-1/2 triangular lattice Heisenberg antiferromagnet: the three-leg triangular spin tube (TST). The model is described by three Heisenberg chains, with exchange constant J, coupled antiferromagnetically with exchange constant J' along the diagonals of the ladder system, with periodic boundary conditions in the shorter direction. We determine the full phase diagram of this model as a function of spatial anisotropy, J'/J, and magnetic field. We find a rich phase diagram, which is dominated by quantum states - phases corresponding to the classical ground state appears only in a small region. Among the dominant phases generated by quantum effects are commensurate and incommensurate coplanar quasi-ordered states, which appear in the…
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