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Generation of the quadripartite Greenberger-Horne-Zeilinger entangled state in quantum beat lasers

机译:量子拍频激光器中四方Greenberger-Horne-Zeilinger纠缠态的产生

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摘要

In this letter, a scheme is presented to obtain quadripartite Greenberger-Horne-Zeilinger (GHZ) entanglement via quantum beats in a four-level diamond configuration atomic system. When the top and the ground states are initially prepared in a coherent superposition, the four quantized fields coupling with four dipole-allowed transitions can be correlated with each other by using a strong microwave field to drive the dipole-forbidden transition. It is the combined effect of atomic coherence-controlled correlated-spontaneous emission and double quantum beats that results in the quadripartite GHZ-type entanglement. Our numerical results show that the quadripartite entanglement, which can be controlled effectively by varying the amplitude and phase of the microwave field, occurs in a very wide parameter range. In addition, using input-output theory, we find that the output quadripartite entanglement is robust against thermal fluctuations, which may be useful for long-distance quantum communications.
机译:在这封信中,提出了一种通过四级金刚石构型原子系统中的量子拍来获得四方格林伯格-霍恩-泽林格(GHZ)纠缠的方案。当最初以相干的叠加方式准备顶部和基态时,可以通过使用强微波场来驱动禁止偶极跃迁,使与四个偶极允许跃迁耦合的四个量化场相互关联。原子相干控制的相关自发发射和双量子拍的综合作用导致了四方GHZ型纠缠。我们的数值结果表明,可以通过改变微波场的幅度和相位来有效控制四方缠结,该缠结发生在非常宽的参数范围内。此外,使用输入输出理论,我们发现输出四方缠结对热波动具有鲁棒性,这可能对长距离量子通信有用。

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