论文标题

PT对称系统中的量子状态歧视

Quantum state discrimination in a PT-symmetric system

论文作者

Chen, Dong-Xu, Zhang, Yu, Zhao, Jun-Long, Wu, Qi-Cheng, Fang, Yu-Liang, Yang, Chui-Ping, Nori, Franco

论文摘要

非正交量子状态歧视(QSD)在量子信息和量子通信中起重要作用。此外,与Hermitian量子系统相比,平均时间 - ($ \ Mathcal {pt} $ - )对称的非量子量子系统表现出新颖的现象,并引起了相当大的关注。在这里,我们通过在$ \ Mathcal {pt} $ - 对称系统(即$ \ Mathcal {pt} $ - 对称QSD)中实验表明QSD,通过在$ \ MATHCAL {pt} $ - 对称的Hamiltonian中进化,以损失的损失型组合。我们观察到,两个最初的非正交状态可以迅速发展为正交状态,只要汉密尔顿的矩阵元素变得足够大,所需的进化时间甚至可以消失。我们还观察到,这种歧视的成本是将量子状态耗散到环境中。此外,通过比较$ \ Mathcal {pt} $ - 对称QSD与遗传系统中的最佳策略,我们发现,以临界值,$ \ Mathcal {pt} $ - 对称QSD等于Hermitian Systems中最佳的明确状态歧视。我们还将$ \ Mathcal {pt} $ - 对称QSD扩展到区分三个非正交状态的情况。 $ \ MATHCAL {PT} $ - 对称系统中的QSD为量子状态歧视打开了新的门,该门在量子计算,量子加密和量子通信中具有重要的应用。

Nonorthogonal quantum state discrimination (QSD) plays an important role in quantum information and quantum communication. In addition, compared to Hermitian quantum systems, parity-time-($\mathcal{PT}$-)symmetric non-Hermitian quantum systems exhibit novel phenomena and have attracted considerable attention. Here, we experimentally demonstrate QSD in a $\mathcal{PT}$-symmetric system (i.e., $\mathcal{PT}$-symmetric QSD), by having quantum states evolve under a $\mathcal{PT}$-symmetric Hamiltonian in a lossy linear optical setup. We observe that two initially nonorthogonal states can rapidly evolve into orthogonal states, and the required evolution time can even be vanishing provided the matrix elements of the Hamiltonian become sufficiently large. We also observe that the cost of such a discrimination is a dissipation of quantum states into the environment. Furthermore, by comparing $\mathcal{PT}$-symmetric QSD with optimal strategies in Hermitian systems, we find that at the critical value, $\mathcal{PT}$-symmetric QSD is equivalent to the optimal unambiguous state discrimination in Hermitian systems. We also extend the $\mathcal{PT}$-symmetric QSD to the case of discriminating three nonorthogonal states. The QSD in a $\mathcal{PT}$-symmetric system opens a new door for quantum state discrimination, which has important applications in quantum computing, quantum cryptography, and quantum communication.

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