论文标题

原子耦合以在宇宙弦时期波动电磁场波动的量子纠缠

Quantum entanglement for atoms coupling to fluctuating electromagnetic field in the cosmic string spacetime

论文作者

Huang, Zhiming

论文摘要

我们研究了两个原子与宇宙弦时期电磁场耦合的纠缠动力学。我们计算不同条件的纠缠。发现纠缠行为取决于真空波动,时空拓扑,两种原子分离和原子极化方向。经过长时间的进化,纠缠将消失,这意味着长期无法保持电磁波动影响的纠缠。对于不同的时空拓扑,纠缠呈现不同的行为,取决于各种参数。当赤字角度参数$ν= 1 $,而原子串距离为无穷大,则恢复了平坦的时空的结果。当原子靠近弦时,可以改善纠缠;特别是,当两个原子位于弦上并且没有轴向方向的极化时,原子不受电磁波动的影响,并且纠缠保持不变。当两个原子的分离相对较大时,纠缠表现出振荡行为,因为原子弦距离会有所不同。这表明弦的存在深刻地改变了真空波动和原子场相互作用。另外,当两个原子分离很小时,纠缠会更好地改善。许多参数和条件为我们提供了更大的控制纠缠行为的自由。原则上,这对于感知宇宙弦的时空拓扑结构和属性很有用,并区分了不同种类的时空。

We investigate entanglement dynamics for two atoms coupling with fluctuating electromagnetic field in the cosmic string spacetime. We calculate the entanglement for different conditions. It is found that the entanglement behaviors are dependent on vacuum fluctuation, spacetime topology, two-atom separation and atomic polarization orientation. After a long time of evolution, entanglement would vanish, which means entanglement affected by electromagnetic fluctuation can not maintain for a long time. For different spacetime topologies, entanglement presents different behaviors dependent on various parameters. When deficit angle parameter $ν=1$ and atom-string distance is towards infinity, the results in flat spacetime are recovered. When atoms keep close to the string, entanglement can be improved; specially, when two atoms locate on the string and have no polarization of axial direction, atoms are not affected by the electromagnetic fluctuation and entanglement can remain unchanged. When two-atom separation is relatively large, entanglement exhibits oscillation behavior as atom-string distance varies. This indicates that the existence of string profoundly modifies on the vacuum fluctuation and atom-field interaction. In addition, when two-atom separation is small, entanglement gains better improvement. Many parameters and conditions provide us with greater freedom to control the entanglement behaviors. In principle, this is useful to sense the cosmic string spacetime topology structure and property, and discriminate different kinds of spacetime.

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