Transferring quantum entangled states between multiple single-photon-state qubits and coherent-state qubits in circuit QED

被引:6
|
作者
Su, Qi-Ping [1 ]
Zhang, Hanyu [1 ]
Yang, Chui-Ping [1 ,2 ]
机构
[1] Hangzhou Normal Univ, Dept Phys, Hangzhou 311121, Peoples R China
[2] Shangrao Normal Univ, Quantum Informat Res Ctr, Shangrao 334001, Peoples R China
基金
中国国家自然科学基金;
关键词
entangled state; single-photon-state qubit; coherent-state qubit; circuit QED; GENERATION; SCHEME;
D O I
10.1007/s11467-021-1098-1
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We present a way to transfer maximally- or partially-entangled states of n single-photon-state (SPS) qubits onto n coherent-state (CS) qubits, by employing 2n microwave cavities coupled to a superconducting flux qutrit. The two logic states of a SPS qubit here are represented by the vacuum state and the single-photon state of a cavity, while the two logic states of a CS qubit are encoded with two coherent states of a cavity. Because of using only one superconducting qutrit as the coupler, the circuit architecture is significantly simplified. The operation time for the state transfer does not increase with the increasing of the number of qubits. When the dissipation of the system is negligible, the quantum state can be transferred in a deterministic way since no measurement is required. Furthermore, the higher-energy intermediate level of the coupler qutrit is not excited during the entire operation and thus decoherence from the qutrit is greatly suppressed. As a specific example, we numerically demonstrate that the high-fidelity transfer of a Bell state of two SPS qubits onto two CS qubits is achievable within the present-day circuit QED technology. Finally, it is worthy to note that when the dissipation is negligible, entangled states of n CS qubits can be transferred back onto n SPS qubits by performing reverse operations. This proposal is quite general and can be extended to accomplish the same task, by employing a natural or artificial atom to couple 2n microwave or optical cavities.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Transferring quantum entangled states between multiple single-photon-state qubits and coherent-state qubits in circuit QED
    Qi-Ping Su
    Hanyu Zhang
    Chui-Ping Yang
    Frontiers of Physics, 2021, 16
  • [2] Transferring quantum entangled states between multiple single-photon-state qubits and coherent-state qubits in circuit QED
    QiPing Su
    Hanyu Zhang
    ChuiPing Yang
    Frontiers of Physics, 2021, 16 (06) : 103 - 112
  • [3] Transferring entangled states of photonic cat-state qubits in circuit QED
    Liu, Tong
    Zheng, Zhen-Fei
    Zhang, Yu
    Fang, Yu-Liang
    Yang, Chui-Ping
    FRONTIERS OF PHYSICS, 2020, 15 (02)
  • [4] Transferring entangled states of photonic cat-state qubits in circuit QED
    Tong Liu
    Zhen-Fei Zheng
    Yu Zhang
    Yu-Liang Fang
    Chui-Ping Yang
    Frontiers of Physics, 2020, 15
  • [5] Entangled coherent-state qubits in an ion trap
    Munro, WJ
    Milburn, GJ
    Sanders, BC
    PHYSICAL REVIEW A, 2000, 62 (05): : 052108 - 052101
  • [6] Preparation of entangled W states with cat-state qubits in circuit QED
    Zhang, Yu
    Liu, Tong
    Yu, Yang
    Yang, Chui-Ping
    QUANTUM INFORMATION PROCESSING, 2020, 19 (08)
  • [7] Quantum state transfer between hybrid qubits in a circuit QED
    Feng, Zhi-Bo
    PHYSICAL REVIEW A, 2012, 85 (01)
  • [8] Preparation of entangled W states with cat-state qubits in circuit QED
    Yu Zhang
    Tong Liu
    Yang Yu
    Chui-Ping Yang
    Quantum Information Processing, 2020, 19
  • [9] A scheme for quantum logic gate based on coherent-state qubits in cavity QED system
    Tang, S. Q.
    Luo, S.
    Xu, J. L.
    QUANTUM AND NONLINEAR OPTICS VIII, 2021, 11905
  • [10] Coherent-state qubits:: entanglement and decoherence
    Asbóth, JK
    Adam, P
    Koniorczyk, M
    Janszky, J
    EUROPEAN PHYSICAL JOURNAL D, 2004, 30 (03): : 403 - 410