English

Single-step multipartite entangled states generation from coupled circuit cavities

Quantum Physics 2019-03-28 v1

Abstract

Green-Horne-Zeilinger states are a typical type of multipartite entangled states, which plays a central role in quantum information processing. For the generation of multipartite entangled states, the single-step method is more preferable as the needed time will not increase with the increasing of the qubit number. However, this scenario has a strict requirement that all the two-qubit interaction strengths should be the same, or the generated state will be of low quality. Here, we propose a scheme for generating multipartite entangled states of superconducting qubits, from a coupled circuit cavities scenario, where we rigorously achieve the requirement via adding an extra z-direction ac classical field for each qubit, leading the individual qubit-cavity coupling strength to be tunable in a wide range, and thus can be tuned to the same value. Meanwhile, in order to obtain our wanted multi-qubits interaction, x-direction ac classical field for each qubit is also introduced. By selecting the appropriate parameters, we numerically shown that high-fidelity multi-qubit GHZ states can be generated. In addition, we also show that the coupled cavities scenario is better than a single cavity case. Therefore, our proposal represents a promising alternative for multipartite entangled states generation.

Keywords

Cite

@article{arxiv.1903.11471,
  title  = {Single-step multipartite entangled states generation from coupled circuit cavities},
  author = {Xiao-Tao Mo and Zheng-Yuan Xue},
  journal= {arXiv preprint arXiv:1903.11471},
  year   = {2019}
}
R2 v1 2026-06-23T08:20:58.978Z