Preparation of n-qubit Greenberger-Horne-Zeilinger entangled states in cavity QED: An approach with tolerance to nonidentical qubit-cavity coupling constants
arXiv:1105.1494 · doi:10.1103/PhysRevA.83.062302
Abstract
We propose a way for generating -qubit Greenberger-Horne-Zeilinger (GHZ) entangled states with a three-level qubit system and (n-1) four-level qubit systems in a cavity. This proposal does not require identical qubit-cavity coupling constants, and thus is tolerant to qubit-system parameter nonuniformity and nonexact placement of qubits in a cavity. The proposal does not require adjustment of the qubit-system level spacings during the entire operation. Moreover, it is shown that entanglement can be deterministically generated using this method and the operation time is independent of the number of qubits. The present proposal is quite general, which can be applied to physical systems such as various types of superconducting devices coupled to a resonator or atoms trapped in a cavity.
3 figures, accepted by Phys. Rev. A
References in corpus (12)
- Scalable multi-particle entanglement of trapped ions
- Demonstration of Two-Qubit Algorithms with a Superconducting Quantum Processor
- Superconducting Circuits and Quantum Information
- Preparation and Measurement of Three-Qubit Entanglement in a Superconducting Circuit
- Generation of Three-Qubit Entangled States using Superconducting Phase Qubits
- Generation of entangled states for many multilevel atoms in a thermal cavity and ions in thermal motion
- Using Sideband Transitions for Two-Qubit Operations in Superconducting Circuits
- Tunable resonators for quantum circuits
- Quantum two-level systems in Josephson junctions as naturally formed qubits
- Tunable Quantum Beam Splitters for Coherent Manipulation of a Solid-State Tripartite Qubit System
- Proposal for generating and detecting multi-qubit GHZ states in circuit QED
- Multiqubit tunable phase gate of one qubit simultaneously controlling qubits in a cavity
Cited by in corpus (5)
- Generation of GHZ entangled states of photons in multiple cavities via a superconducting qutrit or an atom through resonant interaction
- Quantum scissors - finite-dimensional states engineering
- Generating Bell states and -partite states of long-distance qubits in superconducting waveguide QED
- NOON state generation with phonons in acoustic wave resonators assisted by a nitrogen-vacancy-center ensemble
- Transferring multiqubit entanglement onto memory qubits in a decoherence-free subspace