Implementation of a controlled-phase gate and Deutsch-Jozsa algorithm with superconducting charge qubits in a cavity

被引:0
|
作者
Song Ke-Hui [1 ]
Zhou Zheng-Wei
Guo Guang-Can
机构
[1] Huaihua Univ, Dept Phys & Elect Informat Sci, Huaihua 418008, Peoples R China
[2] Univ Sci & Technol China, Key Lab Quantum Informat, Hefei 230026, Peoples R China
关键词
quantum controlled-phase gate; Deutsch-Jozsa algorithm; superconducting quantum interference device; charge qubit;
D O I
暂无
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Based on superconducting quantum interference devices (SQUIDS) coupled to a cavity, we propose a scheme for implementing a quantum controlled-phase gate (QPG) and Deutsch-Jozsa (DJ) algorithm by a controllable interaction. In the present scheme, the SQUID works in the charge regime, and the cavity field is ultilized as quantum data-bus, which is sequentially coupled to only one qubit at a time. The interaction between the selected qubit and the data bus, such as resonant and dispersive interaction, can be realized by turning the gate capacitance of each SQUID. Especially, the bus is not excited and thus the cavity decay is suppressed during the implementation of DJ algorithm. For the QPG operation, the mode of the bus is unchanged in the end of the operation, although its mode is really excited during the operations. Finally, for typical experiment data, we analyze simply the experimental feasibility of the proposed scheme. Based on the simple operation, our scheme may be realized in this solid-state system, and our idea may be realized in other systems.
引用
收藏
页码:821 / 825
页数:5
相关论文
共 50 条
  • [21] Quantum Algorithm Emulator for Implementation of Deutsch-Jozsa Algorithm in the THz region
    Blackwell, Ashley N.
    Yahiaoui, Riad
    Chen, Yi-Huan
    Huang, Zhixiang
    Wang, Xi
    Chen, Pai-Yen
    Searles, Thomas A.
    Chase, Zizwe A.
    2023 48TH INTERNATIONAL CONFERENCE ON INFRARED, MILLIMETER, AND TERAHERTZ WAVES, IRMMW-THZ, 2023,
  • [22] Efficient scheme for implementing the Deutsch-Jozsa algorithm in cavity QED
    Song, Xue-Ke
    Ye, Liu
    JOURNAL OF ATOMIC AND MOLECULAR SCIENCES, 2013, 4 (03): : 261 - 268
  • [23] A Nuclear Magnetic Resonance Implementation of a Classical Deutsch-Jozsa Algorithm
    Abbott, Alastair A.
    Bechmann, Matthias
    Calude, Cristian S.
    Sebald, Angelika
    INTERNATIONAL JOURNAL OF UNCONVENTIONAL COMPUTING, 2012, 8 (02) : 161 - 175
  • [24] Implementation of n-qubit Deutsch-Jozsa algorithm using resonant interaction in cavity QED
    王洪福
    张寿
    Chinese Physics B, 2008, 17 (04) : 1165 - 1173
  • [25] Implementation of n-qubit Deutsch-Jozsa algorithm using resonant interaction in cavity QED
    Wang Hong-Fu
    Zhang Shou
    CHINESE PHYSICS B, 2008, 17 (04) : 1165 - 1173
  • [26] Implementation of Deutsch-Jozsa Algorithm with Superconducting Quantum-Interference Devices via Raman Transition
    ZHAN Zhi-Ming~+School of Physics & Information Engineering
    Communications in Theoretical Physics, 2009, 51 (01) : 135 - 138
  • [27] Implementation of Deutsch-Jozsa Algorithm with Superconducting Quantum-Interference Devices via Raman Transition
    Zhan Zhi-Ming
    COMMUNICATIONS IN THEORETICAL PHYSICS, 2009, 51 (01) : 135 - 138
  • [28] Quantum computation with classical light: Implementation of the Deutsch-Jozsa algorithm
    Perez-Garcia, Benjamin
    McLaren, Melanie
    Goyal, Sandeep K.
    Hernandez-Aranda, Raul I.
    Forbes, Andrew
    Konrad, Thomas
    PHYSICS LETTERS A, 2016, 380 (22-23) : 1925 - 1931
  • [29] IMPLEMENTATION OF TWO-QUBIT DEUTSCH-JOZSA ALGORITHM WITH TRAPPED IONS
    Zhan, Zhi-Ming
    MODERN PHYSICS LETTERS B, 2009, 23 (12): : 1539 - 1546
  • [30] Scheme for Implementing Deutsch-Jozsa Algorithm Using Superconducting Quantum Interference Devices
    MA Chi ZHANG Shi-Jun YE Liu School of Physics and Material Science
    CommunicationsinTheoreticalPhysics, 2008, 49 (02) : 373 - 376