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Entanglement dynamics of moving qubits in a common environment

机译:常见环境中移动Qubits的纠缠动态

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In this paper, we provide an analytical investigation of the entanglement dynamics of moving qubits dissipating into a common and (in general) non-Markovian environment for both weak and strong coupling regimes. We first consider the case of two moving qubits in a common environment and then generalize it to an arbitrary number of moving qubits. Our results show that when the system evolves from an initial entangled state, the amount of initial entanglement decreases and finally disappears after a finite interval of time due to the environmental effects. Moreover, we observe that the movement of qubits has a constructive role in the protection of the initial entanglement. In a sense, in this case, we observe a Zeno-like effect due to the velocity of qubits. On the other hand, we demonstrate how a stationary state of entanglement may be achieved when we consider the case in which at least one of the moving qubits is initially in the ground state. Surprisingly, we observe that when we extend the number of moving qubits with the same velocity, the stationary state of the qubits does not depend on the velocity of qubits as well as on the environmental properties. This means that, in this condition, the stationary state of entanglement depends only on the number of moving qubits. (C) 2020 Optical Society of America
机译:在本文中,我们提供了对移动Qubits的纠缠动态的分析调查,以消散成常见和(通常)非马洛维亚环境的弱和强耦合制度。我们首先考虑共同环境中两个移动Qubits的情况,然后将其概括为任意数量的移动Qubits。我们的研究结果表明,当系统从初始纠缠状态演变时,初始纠缠的量减少,最终在环境效果导致的有限时间间隔后消失。此外,我们观察到Qubits的运动在保护初始纠缠方面具有建设性作用。从某种意义上说,在这种情况下,我们由于Qubits的速度而观察到Zeno的效果。另一方面,我们展示了当我们考虑至少一个移动Qubits最初处于地状态时的情况时,可以如何实现静止状态。令人惊讶的是,我们观察到,当我们延长具有相同速度的移动Qubits的数量时,Qubits的静止状态不依赖于Qubits的速度以及环境属性。这意味着,在这种情况下,纠缠的缠结状态仅取决于移动Qubits的数量。 (c)2020美国光学学会

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