Nematic correlations and nematic Berezinskii-Kosterlitz-Thouless transition in spin-1 kagome lattice antiferromagnets
Chun-Jiong Huang, Xu-Ping Yao, Gang v. Chen

TL;DR
This paper investigates the complex nematic and magnetic phases in a spin-1 kagome lattice antiferromagnet, revealing a rich phase diagram with novel transitions including a nematic BKT transition and coexistence of spin liquid and ferroic orders.
Contribution
It introduces a comprehensive analysis of nematic correlations and phase transitions in spin-1 kagome antiferromagnets using semiclassical and Monte Carlo methods, highlighting new critical phenomena.
Findings
Identification of a pure spin nematic phase.
Discovery of a nematic BKT transition with an anomalous stiffness jump.
Observation of coexistence of spin liquid behavior and ferroic order.
Abstract
Nematicity plays an important role in strongly correlated electron systems. We explore the spin nematicity of a spin-1 kagome lattice antiferromagnet with the bilinear-biquadratic model and single-ion anisotropy using a generalized semiclassical approximation and Monte Carlo simulations. We reveal a rich ground state phase diagram, characterized by two main regions: a pure spin nematic phase and a region featuring the coexistence of a classical spin liquid and ferroicities for both dipolar and quadrupolar moments. The thermal fluctuation melts the spin nematic order into a critical phase with a quasi-long-range nematic order. Due to the fluctuating vortices of the spin nematic order, this critical phase further undergoes a nematic Berezinskii-Kosterlitz-Thouless transition to a paramagnetic phase, marked by an anomalous stiffness jump. Additionally, the single-ion anisotropy leads to…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Algebraic structures and combinatorial models · Cold Atom Physics and Bose-Einstein Condensates
