Loop-Cluster Simulation of the - Model on the Honeycomb Lattice
arXiv:0807.2977 · doi:10.1103/PhysRevB.78.214406
Abstract
Inspired by the lattice structure of the unhydrated variant of the superconducting material NaCoOyHO at , we study the - model on a honeycomb lattice by using an efficient loop-cluster algorithm. The low-energy physics of the undoped system and of the single hole sector is described by a systematic low-energy effective field theory. The staggered magnetization per spin , the spin stiffness , the spin wave velocity , and the kinetic mass of a hole are obtained by fitting the numerical Monte Carlo data to the effective theory predictions.
8 pages, 10 figures, 2 tables
References in corpus (5)
- Interactions and phase transitions on graphene's honeycomb lattice
- Charge order and superconductivity in a two-dimensional triangular lattice at n=2/3
- Two-Hole Bound States from a Systematic Low-Energy Effective Field Theory for Magnons and Holes in an Antiferromagnet
- Homogeneous versus Spiral Phases of Hole-doped Antiferromagnets: A Systematic Effective Field Theory Investigation
- Systematic Low-Energy Effective Field Theory for Electron-Doped Antiferromagnets
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