Reentrance of the Disordered Phase in the Antiferromagnetic Ising Model on a Square Lattice with Longitudinal and Transverse Magnetic Fields
arXiv:2103.12364 · doi:10.7566/JPSJ.90.073001
Abstract
Motivated by recent experiments with Rydberg atoms in an optical tweezer array, we accurately map out the ground-state phase diagram of the antiferromagnetic Ising model on a square lattice with longitudinal and transverse magnetic fields using the quantum Monte Carlo method. For a small but nonzero transverse field, the transition longitudinal field is found to remain nearly constant. By scrutinizing the phase diagram, we uncover a narrow region where the system exhibits reentrant transitions between the disordered and antiferromagnetic phases with increasing transverse field. Our phase diagram provides a useful benchmark for quantum simulation of a Rydberg atom system.
4 pages, 3 figures
References in corpus (8)
- Probing many-body dynamics on a 51-atom quantum simulator
- Many-Body Physics with Individually-Controlled Rydberg Atoms
- Solving the 3d Ising Model with the Conformal Bootstrap II. c-Minimization and Precise Critical Exponents
- Controlling many-body dynamics with driven quantum scars in Rydberg atom arrays
- Quantum phases of Rydberg atoms on a kagome lattice
- DSQSS: Discrete Space Quantum Systems Solver
- Mixed-order transition in the antiferromagnetic quantum Ising chain in a field
- Reentrant Random Quantum Ising Antiferromagnet
Cited by in corpus (4)
- Forecasting long-time dynamics in quantum many-body systems by dynamic mode decomposition
- Dynamics of correlation spreading in low-dimensional transverse-field Ising models
- Quantum phase diagrams of Dicke-Ising models by a wormhole algorithm
- Surface criticality in the mixed-field Ising model with sign-inverted next-nearest-neighbor interaction