论文标题

用一个量子量实施量子步行

Implementing quantum walks with a single qubit

论文作者

Su, Qi-Ping, Wang, Shi-Chao, Chi, Yan, Sun, Yong-Nan, Yu, Li, Sun, Zhe, Nori, Franco, Yang, Chui-Ping

论文摘要

量子步行在量子信息中具有广泛的应用,例如通用量子计算,因此彻底探索量子步行的特性很重要。我们提出了一种新的方法,仅使用单个量子标题来实现离散的量子步行(DTQW),其中硬币和沃克在单个量子位的二维状态空间中都编码了单个量子空间,仅使用单个Qubit Gates实现操作,并且可以自然地获得DTQWS的高维最终状态。通过这种“单量”方法,与以前的方法相比,在大多数量子系统中,可以更容易地实现DTQW实验,并且可以研究基于DTQWS的量子状态(例如量子相关和相干性)的所有属性。通过这种方法,我们使用单个光子在实验中实现了七个步骤的一粒子和两粒子DTQW。此外,我们系统地研究了具有不同的硬币初始状态的DTQW系统的量子相关性和连贯性(基于硬币和沃克的完整状态),在DTQW实验中尚未获得和研究。作为应用,我们还使用实验中的两粒子DTQW的完整状态研究了量子相干性的辅助蒸馏。首次通过获得其上限和下边界,研究了高维混合状态的最大可蒸馏相干性的最大增加。我们的工作为实施DTQW实验并更好地探索量子步行的特性打开了新的门。

Quantum walks have wide applications in quantum information, such as universal quantum computation, so it is important to explore properties of quantum walks thoroughly. We propose a novel method to implement discrete-time quantum walks (DTQWs) using only a single qubit, in which both coin and walker are encoded in the two-dimensional state space of a single qubit, operations are realized using single-qubit gates only, and high-dimensional final states of DTQWs can be obtained naturally. With this "one-qubit" approach, DTQW experiments can be realized much more easily, compared with previous methods, in most quantum systems and all properties based on quantum states of DTQWs (such as quantum correlation and coherence) can be investigated. By this approach, we experimentally implement one-particle and two-particle DTQWs with seven steps using single photons. Furthermore, we systematically investigate quantum correlations and coherence (based on the full state of the coin and walker) of the DTQW systems with different initial states of the coin, which have not been obtained and studied in DTQW experiments. As an application, we also study the assisted distillation of quantum coherence using the full state of the two-particle DTQW from the experiment. The maximal increase in distillable coherence for high-dimensional mixed states is investigated for the first time by obtaining its upper and lower bounds. Our work opens a new door to implement DTQW experiments and to better explore properties of quantum walks.

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