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摘要:
It is well known that the quantum fluctuation of entanglement (QFE) between Unruh-De Witt detector (modeled by a two-level atom) is always investigated in a relativistic setting. However, both of the Unruh radiation and quantum fluctuation effects play an important role in precise measurements of quantum entanglement. In this paper, we have quantitatively analyzed how the relativistic motion affects the QFE for two entangled Unruh-De Witt detectors, one of which is accelerated and interacting with the neighbor external scalar field. Our results show that the QFE, which initially increases by the Unruh thermal noise, will suddenly decay when the acceleration reaches to a considerably large value. Therefore, the relativistic effect will lead to non-negligible QFE effect. We also find that the initial QFE (without acceleration effect) reaches its minimum value at the maximally entangled state and the separable state. More importantly, our analysis demonstrates that although the QFE has a huge decay when the acceleration is greater than~0.96, the ratio of?E/C is still very large, due to the simultaneous decay of concurrence to a very low value. Finally, enlightened by the well-known equivalence principle, we discuss the possibility of applying the above findings to the dynamics of QFE under the influence of gravitation field.
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篇名 Quantum fluctuation of entanglement for accelerated two-level detectors
来源期刊 中国物理B(英文版) 学科
关键词 relativistic quantum information quantum fluctuation Unruh effect
年,卷(期) 2020,(5) 所属期刊栏目
研究方向 页码范围 169-175
页数 7页 分类号
字数 语种 英文
DOI 10.1088/1674-1056/ab7d9a
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relativistic quantum information
quantum fluctuation
Unruh effect
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中国物理B(英文版)
月刊
1674-1056
11-5639/O4
北京市中关村中国科学院物理研究所内
eng
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17050
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0
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27962
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