Wang Xin-Wen, Tang Shi-Qing, Liu Yan, Yuan Ji-Bing
College of Physics and Electronic Engineering, Hengyang Normal University, Hengyang 421002, China.
Hunan Provincial Key Laboratory of Intelligent Information Processing and Application, Hengyang Normal University, Hengyang 421002, China.
Entropy (Basel). 2019 Jan 13;21(1):59. doi: 10.3390/e21010059.
In the practical application of quantum entanglement, entangled particles usually need to be distributed to many distant parties or stored in different quantum memories. In these processes, entangled particles unavoidably interact with their surrounding environments, respectively. We here systematically investigate the entanglement-decay laws of cat-like states under independent Pauli noises with unbalanced probability distribution of three kinds of errors. We show that the robustness of cat-like entangled states is not only related to the overall noise strength and error distribution parameters, but also to the basis of qubits. Moreover, we find that whether a multi-qubit state is more robust in the computational basis or transversal basis depends on the initial entanglement and number of qubits of the state as well as the overall noise strength and error distribution parameters of the environment. However, which qubit basis is conductive to enhancing the robustness of two-qubit states is only dependent on the error distribution parameters. These results imply that one could improve the intrinsic robustness of entangled states by simply transforming the qubit basis at the right moment. This robustness-improving method does not introduce extra particles and works in a deterministic manner.
在量子纠缠的实际应用中,纠缠粒子通常需要被分发到许多遥远的方或存储在不同的量子存储器中。在这些过程中,纠缠粒子不可避免地分别与其周围环境相互作用。我们在此系统地研究了在具有三种错误不平衡概率分布的独立泡利噪声下类猫态的纠缠衰减规律。我们表明,类猫纠缠态的鲁棒性不仅与整体噪声强度和错误分布参数有关,还与量子比特的基有关。此外,我们发现多量子比特态在计算基还是横向基中更鲁棒取决于态的初始纠缠和量子比特数以及环境的整体噪声强度和错误分布参数。然而,哪个量子比特基有利于提高两量子比特态的鲁棒性仅取决于错误分布参数。这些结果意味着人们可以通过在适当的时候简单地变换量子比特基来提高纠缠态的固有鲁棒性。这种提高鲁棒性的方法不引入额外的粒子并且以确定性的方式起作用。