Exact results on the quench dynamics of the entanglement entropy in the toric code
arXiv:1007.2014 · doi:10.1103/PhysRevB.82.134303
Abstract
We study quantum quenches in the two-dimensional Kitaev toric code model and compute exactly the time-dependent entanglement entropy of the non-equilibrium wave-function evolving from a paramagnetic initial state with the toric code Hamiltonian. We find that the area law survives at all times. Adding disorder to the toric code couplings makes the entanglement entropy per unit boundary length saturate to disorder-independent values at long times and in the thermodynamic limit. There are order-one corrections to the area law from the corners in the subsystem boundary but the topological entropy remains zero at all times. We argue that breaking the integrability with a small magnetic field could change the area law to a volume scaling as expected of thermalized states but is not sufficient for forming topological entanglement due to the presence of an excess energy and a finite density of defects.
14 pages, 7 figures, published version
References in corpus (20)
- Many-Body Physics with Ultracold Gases
- Thermalization and its mechanism for generic isolated quantum systems
- Spontaneous symmetry breaking in a quenched ferromagnetic spinor Bose condensate
- Non-equilibrium coherence dynamics in one-dimensional Bose gases
- The Luttinger model following a sudden interaction switch-on
- Universal adiabatic dynamics across a quantum critical point
- Evolution of entanglement entropy following a quantum quench: Analytic results for the XY chain in a transverse magnetic field
- Entanglement entropy of 2D conformal quantum critical points: hearing the shape of a quantum drum
- Quench dynamics across quantum critical points
- Supplementary Information to the paper ``Breakdown of the adiabatic limit in low dimensional gapless systems''
- Breakdown of the adiabatic limit in low dimensional gapless systems
- Breakdown of a topological phase: Quantum phase transition in a loop gas model with tension
- Defect production in non-linear quench across a quantum critical point
- Exact results for quench dynamics and defect production in a two-dimensional model
- Entanglement and topological entropy of the toric code at finite temperature
- Optimal non-linear passage through a quantum critical point
- Quantum Quench from a Thermal Initial State
- Adiabatic Preparation of Topological Order
- Quantum criticality, lines of fixed points, and phase separation in doped two-dimensional quantum dimer models
- Adiabatic nonlinear probes of one-dimensional Bose gases