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首页> 外文期刊>Laser Physics: An International Journal devoted to Theoretical and Experimental Laser Research and Application >Scalable quantum computation via a coherent state input-output process in a low-Q cavity in the atom-cavity intermediate coupling region
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Scalable quantum computation via a coherent state input-output process in a low-Q cavity in the atom-cavity intermediate coupling region

机译:通过原子腔中间耦合区中低Q腔中相干态输入输出过程的可扩展量子计算

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摘要

We propose a basic scheme to construct a hybrid controlled phase-flip (CPF) gate between a flying pulse qubit and a stationary atomic qubit, assisted by a cavity input-output process for a low-Q cavity in the atom-cavity intermediate coupling region. The qubits can be encoded on the coherent states and ground states of the single-trapped L-level atom, respectively. We present a theoretical model of the hybrid CPF gate, whose basic strategy is to control the reflectivity of the input coherent optical pulse to obtain a phase shift conditioned by the different internal atomic states by adjusting the parameters of the cavity quantum electrodynamics (CQED) system. The resulting basic scheme can be used to construct nonlocal gates between remote atomic qubits confined in spatially separated cavities, and also for the generation of an atomic cluster state. The performance and experimental feasibilities of the proposed scheme indicate that it is robust against practical noise and feasible with current technologies. Thus, our scheme is applicable for use in large-scale quantum computation.
机译:我们提出一种基本方案,在原子腔中间耦合区域中的低Q腔的腔输入-输出过程的辅助下,构造一个在飞行脉冲量子位和固定原子量子位之间的混合控制相移(CPF)门。 。可以分别在单陷阱L级原子的相干态和基态上编码qubit。我们提出了一种混合CPF门的理论模型,其基本策略是通过调整腔量子电动力学(CQED)系统的参数来控制输入相干光脉冲的反射率,以获得由不同内部原子态调节的相移。所得的基本方案可用于在空间分隔的空腔内限制的远程原子量子位之间构造非局部门,也可用于生成原子簇状态。该方案的性能和实验可行性表明,该方案对实际噪声具有鲁棒性,并且在当前技术中是可行的。因此,我们的方案适用于大规模量子计算。

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