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耦合到退相干环境的两个相互作用量子比特中的纠缠退化

Entanglement Degradation in Two Interacting Qubits Coupled to Dephasing Environments.

作者信息

Abdelmagid Rahma, Alshehhi Khadija, Sadiek Gehad

机构信息

Department of Applied Physics and Astronomy, University of Sharjah, Sharjah 27272, United Arab Emirates.

Department of Physics, Ain Shams University, Cairo 11566, Egypt.

出版信息

Entropy (Basel). 2023 Oct 17;25(10):1458. doi: 10.3390/e25101458.

Abstract

One of the main obstacles toward building efficient quantum computing systems is decoherence, where the inevitable interaction between the qubits and the surrounding environment leads to a vanishing entanglement. We consider a system of two interacting asymmetric two-level atoms (qubits) in the presence of pure and correlated dephasing environments. We study the dynamics of entanglement while varying the interaction strength between the two qubits, their relative frequencies, and their coupling strength to the environment starting from different initial states of practical interest. The impact of the asymmetry of the two qubits, reflected in their different frequencies and coupling strengths to the environment, varies significantly depending on the initial state of the system and its degree of anisotropy. For an initial disentangled, or a Werner, state, as the difference between the frequencies increases, the entanglement decay rate increases, with more persistence at the higher degrees of anisotropy in the former state. However, for an initial anti-correlated Bell state, the entanglement decays more rapidly in the symmetric case compared with the asymmetric one. The difference in the coupling strengths of the two qubits to the pure (uncorrelated) dephasing environment leads to higher entanglement decay in the different initial state cases, though the rate varies depending on the degree of anisotropy and the initial state. Interestingly, the correlated dephasing environment, within a certain range, was found to enhance the entanglement dynamics starting from certain initial states, such as the disentangled, anti-correlated Bell, and Werner, whereas it exhibits a decaying effect in other cases such as the initial correlated Bell state.

摘要

构建高效量子计算系统的主要障碍之一是退相干,即量子比特与周围环境之间不可避免的相互作用导致纠缠消失。我们考虑一个由两个相互作用的非对称两能级原子(量子比特)组成的系统,该系统存在纯相位退相干环境和关联相位退相干环境。我们从实际感兴趣的不同初始状态出发,研究了在改变两个量子比特之间的相互作用强度、它们的相对频率以及它们与环境的耦合强度时的纠缠动力学。两个量子比特的不对称性体现在它们不同的频率和与环境的耦合强度上,其影响根据系统的初始状态及其各向异性程度而有显著变化。对于初始非纠缠态或韦尔纳态,随着频率差增加,纠缠衰减率增大,在前一种状态下,在更高各向异性程度时纠缠持续时间更长。然而,对于初始反关联贝尔态,对称情况下的纠缠比非对称情况下衰减得更快。两个量子比特与纯(非关联)相位退相干环境的耦合强度差异导致在不同初始状态下有更高的纠缠衰减,尽管衰减率因各向异性程度和初始状态而异。有趣的是,发现在一定范围内,关联相位退相干环境从某些初始状态(如非纠缠态、反关联贝尔态和韦尔纳态)出发时会增强纠缠动力学,而在其他情况下(如初始关联贝尔态)则表现出衰减作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d70e/10606766/c20f5f4a955e/entropy-25-01458-g001.jpg

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