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中国物理学会期刊

离子阱中以声子为媒介的多体量子纠缠与逻辑门

CSTR: 32037.14.aps.71.20220360

Phonon-mediated many-body quantum entanglement and logic gates in ion traps

CSTR: 32037.14.aps.71.20220360
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  • 高保真度的多离子纠缠和量子逻辑门是离子阱量子计算的基础. 在现有的方案中, Mølmer-Sørensen 门是比较成熟的实现多离子纠缠和量子逻辑门的实验方案. 近年来, 还出现了通过设计超快激光脉冲序列, 在Lamb-Dicke区域以外实现超快量子纠缠和量子逻辑门的方案. 这些方案均借助离子链这一多体量子系统的声子能级来耦合离子之间的自旋状态, 并且均通过调制激光脉冲或设计合适的脉冲序列解耦多运动模式, 来提高纠缠门的保真度. 本文从理论和实验层面分析了这些多体量子纠缠和量子逻辑门操作的关键技术, 揭示了离子阱中利用激光场驱动离子链运动态, 通过非平衡过程中的非线性相互作用, 来实现量子逻辑门的基本物理过程.

     

    The high-fidelity multi-ion entangled states and quantum gates are the basis for trapped-ion quantum computing. Among the developed quantum gate schemes, Mølmer-Sørensen gate is a relatively mature experimental technique to realize multi-ion entanglement and quantum logic gates. In recent years, there have also been schemes to realize ultrafast quantum entanglement and quantum logic gates that operate outside the Lamb-Dicke regime by designing ultrafast laser pulse sequences. In such a many-body quantum system, these entanglement gates couple the spin states between ions by driving either the phonon energy level or the motional state of the ion chain. To improve the fidelity of quantum gates, the modulated laser pulses or the appropriately designed pulse sequences are applied to decouple the multi-mode motional states. In this review, we summarize and analyze the essential aspects of realizing these entanglement gates from both theoretical and experimental points of view. We also reveal that the basic physical process of realizing quantum gates is to utilize nonlinear interactions in non-equilibrium processes through driving the motional states of an ion chain with laser fields.

     

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