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Thermal effects on bipartite and multipartite correlations in fiber coupled cavity arrays

机译:光纤耦合腔阵列中热对双相和多相相关性的影响

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摘要

We investigate the thermal influence of fibers on the dynamics of bipartite and multipartite correlations in fiber coupled cavity arrays where each cavity is resonantly coupled to a two-level atom. The atom-cavity systems connected by fibers can be considered as polaritonic qubits. We first derive a master equation to describe the evolution of the atom-cavity systems. The bipartite (multipartite) correlations are measured by concurrence and discord (spin squeezing). Then, we solve the master equation numerically and study the thermal effects on the concurrence, discord, and spin squeezing of the qubits. On the one hand, at zero temperature, there are steady state bipartite and multipartite correlations. On the other hand, the thermal fluctuations of a fiber may block the generation of entanglement of two qubits connected directly by the fiber, while the discord can be generated and stored for a long time. This thermal-induced blockade effects of bipartite correlations may be useful for quantum information processing. The bipartite correlations of a longer chain of qubits is more robust than a shorter one in the presence of thermal fluctuations.
机译:我们研究了纤维的热影响对纤维耦合腔阵列中二元和多粒子相关动力学的影响,其中每个腔共振耦合到一个二级原子。通过纤维连接的原子腔系统可以被认为是极化子量子位。我们首先导出一个主方程来描述原子腔系统的演化。双向(多方)相关性是通过并发和不一致(旋转压缩)来衡量的。然后,我们对主方程进行数值求解,并研究热对量子位的并发,不协调和自旋压缩的影响。一方面,在零温度下,存在稳态的两方和多方相关性。另一方面,光纤的热波动可能会阻止由光纤直接连接的两个量子比特的纠缠的产生,而不一致的现象则可能会长时间产生和存储。这种由热引起的二分相关的封锁效应可能对量子信息处理有用。在存在热波动的情况下,较长的量子位链的二分相关性比较短的量子位链更健壮。

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