Generation of Perfectly Entangled Two and Three Qubits States by Classical Random Interaction

被引:1
|
作者
Akram, Javed [1 ]
机构
[1] COMSATS Univ Islamabad, Dept Phys, Pk Rd, Islamabad 45550, Pakistan
关键词
coupled Lindblad master equations; noisy environment; quantum gates; superconducting devices; transmon qubits; two-qubit SWAPthree-qubit Fredkin gate; W-state generation; three-qubit Fredkin gates;
D O I
10.1002/andp.202200511
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
This study examines the possibility of finding perfect entanglers for a Hamiltonian which corresponds to several quantum information platforms of interest at the present time. However, in this study, a superconducting circuit is used that stands out from other quantum-computing devices, especially because transmon qubits can be coupled via capacitors or microwave cavities, which enables to combine high coherence, fast gates, and high flexibility in its design parameters. There are currently two factors limiting the performance of superconducting processors: timing mismatch and the limitation of entangling gates to two qubits. In this work, a two-qubit SWAP and a three-qubit Fredkin gate is presented, additionally, a perfect adiabatic entanglement generation between two and three programmable superconducting qubits is also demonstrated. Furthermore, the impact of random dephasing, emission, and absorption noises on the quantum gates and entanglement is also demonstrated in this study. It is demonstrated by numerical simulation that CSWAP gate and W-state generation can be achieved perfectly in one step with high reliability under weak coupling conditions. Hence, this scheme could contribute to quantum teleportation, quantum communication, and some other areas of quantum information processing.
引用
收藏
页数:7
相关论文
共 50 条
  • [1] Generation of three-qubit entangled states using superconducting phase qubits
    Matthew Neeley
    Radoslaw C. Bialczak
    M. Lenander
    E. Lucero
    Matteo Mariantoni
    A. D. O’Connell
    D. Sank
    H. Wang
    M. Weides
    J. Wenner
    Y. Yin
    T. Yamamoto
    A. N. Cleland
    John M. Martinis
    Nature, 2010, 467 : 570 - 573
  • [2] Generation of three-qubit entangled states using superconducting phase qubits
    Neeley, Matthew
    Bialczak, Radoslaw C.
    Lenander, M.
    Lucero, E.
    Mariantoni, Matteo
    O'Connell, A. D.
    Sank, D.
    Wang, H.
    Weides, M.
    Wenner, J.
    Yin, Y.
    Yamamoto, T.
    Cleland, A. N.
    Martinis, John M.
    NATURE, 2010, 467 (7315) : 570 - 573
  • [3] Experimental generation of two EPR entangled states with classical coherence
    Jia, XJ
    Su, XL
    Pan, Q
    Xie, CD
    Peng, KC
    ACTA PHYSICA SINICA, 2005, 54 (06) : 2717 - 2722
  • [4] Maximally entangled mixed states of two qubits
    Verstraete, F
    Audenaert, K
    De Moor, B
    PHYSICAL REVIEW A, 2001, 64 (01): : 6
  • [5] Maximally entangled mixed states in two qubits
    Ishizaka, S
    Hiroshima, T
    QUANTUM COMMUNICATION, COMPUTING, AND MEASUREMENT 3, 2001, : 411 - 414
  • [6] Maximally entangled mixed states of two qubits
    Verstraete, F.
    Audenaert, K.
    De Moor, B.
    Physical Review A. Atomic, Molecular, and Optical Physics, 2001, 64 (01): : 123161 - 123166
  • [7] Binegativity and geometry of entangled states in two qubits
    Ishizaka, S
    PHYSICAL REVIEW A, 2004, 69 (02): : 4
  • [8] Local cloning of genuinely entangled states of three qubits
    Choudhary, Sujit K.
    Kar, Guruprasad
    Kunkri, Samir
    Rahaman, Ramij
    Roy, Anirban
    PHYSICAL REVIEW A, 2007, 76 (06):
  • [9] Controllable and accelerated generation of entangled states between two superconducting qubits in circuit QED
    Yan, Run-Ying
    Feng, Zhi-Bo
    OPTICS AND LASER TECHNOLOGY, 2021, 135
  • [10] Evidence for entangled states of two coupled flux qubits
    Izmalkov, A
    Grajcar, M
    Il'ichev, E
    Wagner, T
    Meyer, HG
    Smirnov, AY
    Amin, MHS
    van den Brink, AM
    Zagoskin, AM
    PHYSICAL REVIEW LETTERS, 2004, 93 (03) : 037003 - 1