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Detecting the Curvature of de Sitter Universe with Two Entangled Atoms

机译:用两个缠结原子检测De Satter Universe的曲率

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Casimir-Polder interaction arises from the vacuum fluctuations of quantum field that depend on spacetime curvature and thus is spacetime-dependent. Here we show how to use the resonance Casimir-Polder interaction (RCPI) between two entangled atoms to detect spacetime curvature. We find that the RCPI of two static entangled atoms in the de Sitter-invariant vacuum depends on the de Sitter spacetime curvature relevant to the temperature felt by the static observer. It is characterized by a 1/L(2) power law decay when beyond a characteristic length scale associated to the breakdown of a local inertial description of the two-atom system. However, the RCPI of the same setup embedded in a thermal bath in the Minkowski universe is temperature-independent and is always characterized by a 1/L power law decay. Therefore, although a single static atom in the de Sitter-invariant vacuum responds as if it were bathed in thermal radiation in a Minkowski universe, using the distinct difference between RCPI of two entangled atoms one can in principle distinguish these two universes.
机译:Casimir-Bolder相互作用由依赖于时空曲率的量子场的真空波动产生,因此依赖于时空。在这里,我们展示了如何在两个缠绕的原子之间使用谐振卡西米尔 - 圩区交互(RCPI)来检测空间曲率。我们发现DE保姆 - 不变真空中的两个静态纠缠原子的RCPI取决于与静态观测器感应的温度相关的de Satter时空曲率。它的特征在于1 / L(2)电力法衰减,当超出与双原子系统的局部惯性描述的崩溃相关的特征长度尺度时。然而,在Minkowski Universe中嵌入在热浴中的相同设置的RCPI是温度无关的,并且始终以1 / L权力法衰减为特征。因此,虽然De Satter的真空中的单个静态原子响应了Minkowski Universe中的热辐射中的热辐射,但是在原则上使用两个缠结原子的RCPI之间的不同差异来区分这两个宇宙。

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