Generation of Bell, W and GHZ states via exceptional points in non-Hermitian quantum spin systems
arXiv:1503.05991 · doi:10.1103/PhysRevA.91.062104
Abstract
We study quantum phase transitions in non-Hermitian XY and transverse-field Ising spin chains, in which the non-Hermiticity arises from the imaginary magnetic field. Analytical and numerical results show that at exceptional points, coalescing eigenstates in these models close to W, distant Bell and GHZ states, which can be steady states in dynamical preparation scheme proposed by T. D. Lee et. al. (Phys. Rev. Lett. 113, 250401 (2014)). Selecting proper initial states, numerical simulations demonstrate the time evolution process to the target states with high fidelity.
References in corpus (8)
- Entanglement and spin squeezing in non-Hermitian phase transitions
- Quantum state transmission via a spin ladder as a robust data bus
- PT Symmetry on the Lattice: The Quantum Group Invariant XXZ Spin-Chain
- A spin chain model with non-Hermitian interaction: The Ising quantum spin chain in an imaginary field
- Spontaneous PT symmetry breaking and quantum phase transitions in dimerized spin chains
- Peierls distorted chain as a quantum data bus for quantum state transfer
- Conventional quantum phase transition driven by complex parameter in non-Hermitian PT-symmetric Ising model
- Exactly Solvable Quasi-hermitian Transverse Ising Model
Cited by in corpus (3)
- Non-Hermitian bidirectional robust transport
- Scalable -type entanglement resource in neutral-atom arrays with Rydberg-dressed resonant dipole-dipole interaction
- Conversion from to Greenberger-Horne-Zeilinger states in the Rydberg-blockade regime of neutral-atom systems: Dynamical-symmetry-based approach