Proximate Dirac spin liquid in honeycomb lattice J<sub>1</sub>-J<sub>3</sub> XXZ model: Numerical study and application to cobaltates
ORAL
Abstract
The honeycomb cobaltates, initially proposed as candidate Kitaev quantum magnets, have been shown recently to be described instead by a pseudospin-1/2 easy-plane spin Hamiltonian with nearest neighbor ferromagnetic (FM) exchange J1 being frustrated by antiferromagnetic third-neighbor exchange J3 and weaker compass anisotropies. Using exact diagonalization and density-matrix renormalization group (DMRG) calculations, we show that this model exhibits FM order at small J3/J1 and zig-zag (ZZ) order at large J3/J1, separated by an intermediate phase, which is shown to exhibit spin-liquid-like correlations in DMRG, although weak broken symmetries cannot be precluded. Using a modified parton mean field theory and variational Monte Carlo on Gutzwiller projected wavefunctions, we show that the optimal FM and ZZ orders as well as the intermediate SL-like state are proximate to a `parent' Dirac spin liquid (SL). This Dirac SL is shown to capture the broad continuum in the temperature and magnetic field dependent terahertz spectroscopy of BaCo2(AsO4)2 (BCAO), and the reported low temperature metallic thermal conductivity in Na2Co2TeO6 (NCTO) and BCAO. We generalize our results to discuss neutron scattering and other spectroscopic signatures of the proximate Dirac SL.
*This research was funded by NSERC of Canada, DST India, and a SERB-India Vajra Fellowship.
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Publication: https://doi.org/10.48550/arXiv.2212.13271
Presenters
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Anjishnu Bose
- Univ of Toronto
- University of Toronto