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Unconventional Geometric Quantum Gate in Circuit QED |
ZHENG Xiao-Hu1,2, DONG Jun2, LIU Yu-Wen3, YANG Ming2, CAO Zhuo-Liang4 |
1Editorial Department of Journal, Anhui University, Hefei 230039 2Key Laboratory of Opto-electronic Information Acquisition and Manipulation (Ministry of Education), School of Physics and Material Science, Anhui University, Hefei 230039 3Artillery Academy of PLA, Hefei 230031 4Department of Physics and Electronic Engineering, Hefei Normal University, Hefei 230061 |
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Cite this article: |
ZHENG Xiao-Hu, DONG Jun, LIU Yu-Wen et al 2010 Chin. Phys. Lett. 27 070302 |
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Abstract We propose a scheme to implement an unconventional geometric phase gate in circuit QED, i.e. two superconducting charge qubits inside a superconducting transmission line resonator. The quantum operation depends only on global geometric features, and thus is insensitive to the state of the cavity mode.
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Keywords:
03.67.Lx
03.65.Vf
85.25.Cp
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Received: 25 December 2009
Published: 28 June 2010
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PACS: |
03.67.Lx
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(Quantum computation architectures and implementations)
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03.65.Vf
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(Phases: geometric; dynamic or topological)
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85.25.Cp
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(Josephson devices)
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