首页> 外文期刊>International Journal of Theoretical Physics: A Journal of Original Research and Reviews in Theoretical Physics and Related Mathematics, Dedicated to the Unification of Physics >Entanglement Dynamics and Symmetry Breaking in Symmetric four Qubits GHZ- and W-type States Coupled to Classical Random Telegraph Noise in Mixed Environments
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Entanglement Dynamics and Symmetry Breaking in Symmetric four Qubits GHZ- and W-type States Coupled to Classical Random Telegraph Noise in Mixed Environments

机译:对称四个Qubits中的纠缠动态和对称性中断GHz和W型状态耦合到混合环境中的经典随机电报噪声

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This paper investigates the time behavior of entanglement (quantified by negativity) and the symmetry breaking in a symmetric four-qubit system (initialized either in the GHZ-type or W-type states), interacting with a Markov and non-Markov random telegraph noise (RTN). Two different qubit-noise coupling configurations, namely C1 and C2 are investigated. In the first one (C1) it is assumed that, three of the qubits interact with the noise in a common environment (CE) and the remaining qubit in its own local environment while in the second one (C2) it is rather assumed that two of them interact in a CE and the rest also in their own CE. Using the entanglement between the different non-equivalent bipartitions of the qubits (obtained by dividing the system into two arbitrary blocks) as probe, it is demonstrated that the breaking of symmetry in the initialized state of the qubits occurs due to bipartitions of system in which none of the qubit(s) in the right block/partition share the same environment with the remaining qubit(s) in the left block/partition. On the other hand, it is shown that the CE induces an indirect interaction between the qubits which plays a constructive role in reducing the decay rate of entanglement. As a matter of fact, it is shown that the higher the number of qubit interacting in a CE, the more protected the entanglement of the overall system, demonstrating that the C1 scheme is more efficient for shield the system from the detrimental impacts induced by the RTN than the C2 one. Finally, it is shown that strong qubit-environment coupling strength also favors the exchanges of information between the qubits and the external environment.
机译:本文研究了纠缠的时间行为(通过消极量量化)和对称四个QUBit系统中的对称性破坏(在GHz型或W型状态下初始化),与马尔可夫和非马尔可夫随机电报噪声相互作用(rtn)。研究了两种不同的Qubit噪声耦合配置,即C1和C2。在第一个(C1)中,假设,三个QUBITS在常见环境中与噪声相互作用,并且在其自己的本地环境中剩余的QUBET,而在第二个(C2)中相当假设这两个他们在CE中互动,其余的也在自己的CE中。使用Qubits的不同非等效分层之间的缠结(通过将系统除以两个任意块而获得)作为探针,结果表明,由于系统的两分右侧块/分区中的qubit(s)都没有与左侧块/分区中的剩余qubit的环境共享相同的环境。另一方面,表明CE在降低衰减速率方面起着建设性作用的QUBIT之间引起间接相互作用。事实上,结果表明,CE中相互作用的量子位数越高,整个系统的缠结越多,表明C1方案对保护系统造成的抗衡影响更有效rt比c2 rt。最后,表明强调QUBBit环境耦合强度也有利于Qubits和外部环境之间的信息交换。

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