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Unconventional geometric phase gate and multiqubit entanglement for hot ions with a frequency-modulated field

Unconventional geometric phase gate and multiqubit entanglement for hot ions with a frequency-modulated field
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摘要 We present an alternative scheme for implementing the unconventional geometric two-qubit phase gate and prepar- ing multiqubit entanglement by using a frequency-modulated laser field to simultaneously illuminate all ions. Selecting the index of modulation yields selective mechanisms for coupling and decoupling between the internal and the external states of the ions. By the selective mechanisms, we obtain the unconventional geometric two-qubit phase gate, multiparticle Greenberger-Horne-Zeilinger states and highly entangled cluster states. Our scheme is insensitive to the thermal motion of the ions. We present an alternative scheme for implementing the unconventional geometric two-qubit phase gate and prepar- ing multiqubit entanglement by using a frequency-modulated laser field to simultaneously illuminate all ions. Selecting the index of modulation yields selective mechanisms for coupling and decoupling between the internal and the external states of the ions. By the selective mechanisms, we obtain the unconventional geometric two-qubit phase gate, multiparticle Greenberger-Horne-Zeilinger states and highly entangled cluster states. Our scheme is insensitive to the thermal motion of the ions.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2010年第11期102-108,共7页 中国物理B(英文版)
基金 Project supported by the National Basic Research Program of China (Grant No. 2005CB724508) the Scientific Research Foundation of Jiangxi Provincial Department of Education,China (Grant No. GJJ10133) the Foundation of Talent of Jinggangof Jiangxi Province,China (Grant No. 2008DQ00400)
关键词 a frequency-modulated field unconventional geometric phase gate Greenberger-Horne- Zeilinger states cluster states a frequency-modulated field, unconventional geometric phase gate, Greenberger-Horne- Zeilinger states, cluster states
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